All-In with Chamath, Jason, Sacks & Friedberg - Jared Isaacman: A New Era for NASA and American Space Exploration
Episode Date: September 18, 2026(0:00) NASA Administrator Jared Isaacman lays out the state and future of NASA (17:59) Moon base, creating new space industries, NASA's next chapter (23:29) How to make Mars realistic (25:30) Recruiti...ng, moonshots, the "Nuclear NASA," new vehicles and the importance of humans in space (32:43) Allocating capital toward scientific discovery and deep space research (35:46) Space Race 2.0: China and Russia Thanks to our partners for making this possible! IREN is a vertically integrated AI Cloud platform, delivering data centers, compute and software for AI training and inference. https://iren.com Oracle connects the data, applications, and infrastructure that turn AI into business outcomes—with the flexibility, choice, and control to optimize as AI evolves. http://oracle.com/ai EY helps tech innovators scale from startup to exit to megacap. You build the future. We'll handle the rest. http://www.ey.com Meta believes the future is for everyone. We're focused on giving every person the tools to reach their full potential and making sure the benefits of technology are distributed to all. http://www.meta.com Keel Infrastructure owns the power, land, and connectivity that HPC and AI run on - backed by secured energy assets and established grid interconnections across North America. https://keelinfra.com/ Airwallex - Agentic Global Business Accounts. Open local accounts in 70+ countries to accept payments, earn yield, pay globally, and manage spend. http://airwallex.com PayPal has been revolutionizing commerce globally for more than 25 years. Creating innovative experiences that make moving money, selling, and shopping simple, personalized, and secure, PayPal empowers consumers and businesses in approximately 200 markets to join and thrive in the global economy. For more information, visit https://www.paypal.com Google for Startups connects founders with the right people, products, and best practices to help startups build faster and go further. https://startup.google.com/ Explore ideas, industries, and technologies worth understanding with Chamath every week on Learn with Me: https://research.socialcapital.com/allin Follow Jared Isaacman: https://x.com/rookisaacman https://x.com/NASAAdmin Follow the besties: https://x.com/chamath https://x.com/Jason https://x.com/DavidSacks https://x.com/friedberg Follow on X: https://x.com/theallinpod Follow on Instagram: https://www.instagram.com/theallinpod Follow on TikTok: https://www.tiktok.com/@allin Follow on LinkedIn: https://www.linkedin.com/company/allinpod Intro Music Credit: https://rb.gy/tppkzl https://x.com/yung_spielburg
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Ignition sequence start.
All engines are up.
It's good to have an aviator and astronaut in charge.
Jared Eisenberg.
The new NASA administrator.
NASA is still hot.
Human kind will not be contained to planet Earth indefinitely.
And the next giant leap capabilities, that's nuclear power and propulsion.
That's what extends America's reach farther into the solar system.
That's what guarantees the third race will never be in question.
Please welcome Jared Isaacman.
Good morning, everyone.
It is an absolute honor to be here at All In.
We are living through an extraordinary moment in history, aren't we?
It took just 65 years from Orville and Wilver's first flight to Neil and Buzz walking on the surface of the moon.
Now, it's been 57 years since Apollo 11, and for a while there,
pace of progress hasn't been all that inspiring, but look at what is on the horizon right now.
We got artificial intelligence, quantum technologies, robotics, additive manufacturing, the promise
of fusion energy, biotech to heal the disabled autonomous transportation, this whole abundance
thing everyone's talking about, all converging in the years ahead is beyond what most people
can comprehend.
our world will fundamentally change, how we live, how we work, how we fight wars, how we reach out
and touch the stars.
But we are not alone on this journey.
We are living through a great power competition.
Other nations understand the opportunities that can elevate nations and change civilizations.
And perhaps nowhere are the possibilities, the competition, and the consequences of getting it
wrong, more apparent than in the ultimate high ground above us.
Now at NASA, we are doing things differently, and we are regaining our swagger and putting wins
on the board.
But absent this president, absent this geopolitical competition, and the very real possibility
of losing the second space race, I suspect very little would have changed.
For two long resources at the world's most accomplished space agency were spread everywhere,
trying to make everyone happy.
Much of it was through external imposition,
but plenty of it was self-inflicted.
We partnered for the sake of partnerships,
oftentimes becoming a drag on the mission
instead of accelerating it.
As a result, we have the Orion spacecraft
that we can't inject into low lunar orbit
like we did during Apollo,
and the prior administration canceled
the Mars sample return mission
that was on track to cost more than an aircraft carrier.
We created programs that were
too big to fail, too costly to truly succeed in the hope that they would survive administrations.
The results being a rocket that was designed when China was predominantly operating coal-fired locomotives
and now becoming operational as China operates 25,000 miles of high-speed rail
and is just a few years away from their own Apollo 11-like moment.
Core competencies and tens of thousands of the NASA workforce were rented, outsource,
or lost, which turned what should have been months worth of progress into years at tremendously
greater cost.
Eventually, too little was left to do things the right way, the way NASA showed the world
how to do it in decades past.
So we invented this whole dream state as a service thing forgoing the playbook of success
and shifting the impossible burden onto others.
The result is that our moon rocket is, in fact, less efficient than Saturn 5 at converting
launch mass into payload.
payload headed for the moon, with more time between the Artemis 1 and Artemis 2 mission
than all 12 of the Gemini missions that were flown 60 years before.
A lunar space station that, whenever it may have been delivered, put our astronauts in a
position to look down on the most desirable lunar real estate instead of operating on the
surface and occupying it.
One X-plane that wasn't flying very much, and billions spent on failed nuclear programs
that had not left the laboratory since 1965.
Now, during the first space race, we were slow out of the gate,
but NASA ultimately ran up the score.
The second will be much closer than it ever needed to be.
Since becoming the administrator of NASA last year,
we have made a different choice.
We are not going to try and make everyone happy.
We are not going to spread every penny across every district
or partner with every nation just to try and make everyone happy.
or because that's how people incorrectly believed it always was.
I am certainly not here for the money to favor companies for the title, the notoriety, the politics.
I'm not here to be your VC to entertain your dream or invent new markets if it detracts
in the slightest way from the missions that we have been entrusted to achieve on behalf of the American
people. You can take those conversations up with the Department of Commerce, if you like.
I'm here to execute on President Trump's national space policy to align and focus on
resources to work alongside and unleash the best this nation has to offer.
From the NASA workforce to our industry to our partners and deliver the world-changing outcomes,
the kind of outcomes that put Neil and Buzz on the Moon, the kind of outcomes that inspired
many of you to be in this room in the first place.
This is a very reinvigorated and energized NASA, and America is back in the business
of sending our astronauts to the Moon.
Now, Artemis II was just the beginning, those four heroic astronauts.
Recent recipients of the Congressional Space Medal of Honor rode 8.8 million pounds of thrust
to near-Earth escape velocities, traveled farther into space than any humans in history
around the moon and back home safely, and that was just the opening act.
We are not waiting three years to fly again.
We are not turning every rocket into a work of art.
Artemis 3 is already being assembled right now at a pace many doubted was possible.
just months ago. Before year end, we intend to roll out to launch Complex 39B for a tanking test
and send a message to our workforce, our industry and our rivals overseas. NASA is back,
and we are not going to sit idly by. We are not just a procurement organization. We are going to
do the extremely demanding work and achieve our objectives safely, responsibly, and urgently
because that is what meeting the moment requires. Now, in the summer of 2027, Artemis 3 will launch
on SLS into low Earth orbit and rendezvous
with lander test vehicles from Blue Origin in SpaceX
in what will be a remarkable display
of the three most powerful rockets and spacecraft in the world.
We will test interoperability
and show what a future multi-launch campaign
can actually look like.
What we learn will inform the uncrewed test landings
that follow, and then Artemis 4 in 2028
when American astronauts returned to the lunar surface
and this time to stay.
In parallel, we are establishing humanity's first outposts on another world, a moonbase,
and this time we are leveraging the NASA playbook of decades past.
We are not jumping directly to the dream state.
We will launch missions on a near-monthly cadence and undertake the science of survival.
That means autonomous and crude mobility, surface improvement,
in-situ resource utilization and manufacturing, logistics, habitability, power, communications,
and all the science instruments the mass budget affords.
We will bring it to you live and HD on the Moonbase website,
and we will leave no doubters this time.
We go for the scientific and the economic potential.
We go to learn about the formation of our solar system,
but primarily because the lunar South Pole, where the water ice is,
is going to be the technological proving ground
for where we inevitably go next, which is Mars.
In 2008,
In 2028, NASA will leave decades and billions of dollars
of failed nuclear programs behind
and launch SR1 Freedom, a 100-kilawatt
fission reactor that will finally get America underway
on nuclear power.
The mission will transit Mars and release Skyfall,
which carries three ingenuity-class helicopters
and using ground-pretenetrating radar
to scout subsurface ice and future landing sites.
This will mark the beginning of the nuclear NASA,
pivoting our workforce and facilities back to doing the near-impossible.
Missions with no obvious business case, what no company, no agency or nation is presently capable of accomplishing,
but that extend humanity's reach farther into the outer solar system.
And just like during the Apollo era, the technology that we pioneer to get there
will surely benefit life back here at home.
There will be lots of nuclear missions, SR2, SR3, SR4, alongside our industry,
we will push the boundaries of high-temperature materials, more efficient power conversion,
more reduced radiator mass, and higher performance electric propulsion as we visit some of the most
interesting moons, like Enceladus, Europa, and Titan.
These are worlds with oceans, with complex chemistry, and perhaps the ingredients for life,
a reminder that some of the greatest discoveries in human history, they may be waiting
for us in our own backyard.
We could answer the question, are we alone?
and are we alone even in our own solar system,
let alone the galaxy and universe around us?
Someday, a chemically augmented nuclear power transfer vehicle,
part of an American starfleet,
supported by an armada of starships and other spacecraft,
will carry humans to the surface of Mars
and bring them home safely to tell us about it,
and not just once.
We are on this great destiny of human exploration,
and we are not turning back.
Along the way, we are going to do the other things,
Commercial satellites are being printed off at a rate that will help us affordably understand
the only planet that we presently inhabit.
Our home star and space weather and better predict weather and perhaps respond to wildfires
and natural disasters better, freeing up more resources to build the exquisite flagship
science missions that only NASA can undertake.
Like for example, the nuclear-powered dragonfly octocopter.
It's powered by a two-kilawatt MMRTG converting to just 100 watts of electricity, barely better
than an old light bulb, but it will journey to Saturn's moon of Titan in 2028.
Europa Clipper will arrive at Jupiter's icy moon in 2030.
And our great space telescopes, like James Webb and Hubble, will soon be joined by Roman,
and with her nearly 300 megapixel wide-field instrument and JPL built coronagraph,
in the moments ahead, Roman will open her eyes, and in that instance,
she will see more of the universe than any scientific instrument we've ever put in space before.
her surveys will seek to
it is a cool telescope
her surveys will seek to understand the mysteries
of dark energy and dark matter
and reveal tens of thousands of worlds
that are hidden behind distant stars
Roman will return images so large
and in such detail there is no screen
on earth large enough to display them
now other missions like Neo-surveyor
will find asteroids in comments that can threaten Earth
while next generation
telescopes in development will seek out habitable planets orbiting other stars.
The last few decades have shown us that the future in space that we all imagined as children
will never be realized if they're perpetually funded by taxpayers.
NASA will do everything within reason to support an orbital and perhaps even lunar economy
someday building on the proven markets of launch, observation, and communication.
Whether the next frontier is in orbital data centers or commercial space stations or
on-orbit manufacturing, regolith resource extract.
and asteroid mining or industries that none of us have even imagined yet.
Now, it's not NASA's job to force an economy,
but we will do all we can to ignite one as we pursue our missions.
And in the service of the 1st A in NASA,
we are rebuilding our X-plane fleet.
The X-59 is researching quiet supersonic flight,
but it's just the beginning,
as NASA recommits to flight test
and works alongside industry to push the boundaries of airframe
and propulsion design.
It will not be long before NASA
is flying once again as high and as fast as we have from decades past and then even more.
But if this frontier is going to expand as rapidly as we believe it will be, we will have
to cultivate the talent to lead it.
The space domain deserves an institution focused on that future and call it what many already
have and should, a Starfleet Academy.
That is why the President established the Commission for the United States Space Academy, a NASA-led
Federal Academy to prepare the next generation of astronauts, scientists, engineers, technicians,
operators, pilots, and leaders.
And just as the need for space force became clear as the domain evolved,
we should be equally forward-looking and preparing those who will build the moon base,
operate nuclear-powered spacecraft, command missions to Mars,
ensure our national security, and create industries in orbit we can barely imagine today.
And there is no time to waste.
I want you all to think about where you were when Artemis II astronauts sent back those images
from the moon.
Who did it touch?
your parents, your friends, your colleagues, your children.
Now I want you to imagine astronauts climbing down the ladder.
Only this time, it is not grainy black and white footage from July 20th,
1969.
It's high-definition color, streaming live to billions of people all around the world.
The astronaut steps foot on the lunar surface,
the camera pans up, and the flag on the spacesuit is not American.
There will be no footnote explaining that we spent more,
No disclaimer that our architecture was complicated.
No one will care how many studies we completed, how many meetings we held,
what congressional districts benefited,
who all the all-star lobbyists were for their hardware,
who served on the committee,
or how many times we slipped the schedule for what someone thought
was a perfectly reasonable reason?
The world will just see who got there.
China intends to put their astronauts on the moon by 2030.
Its robotic missions are targeting the shackled and crater
of the Lunar South Pole next year,
and there are only so many good parking spots in that neighborhood.
And they intend to occupy them.
They were working with Russia and their own nuclear-powered moon base.
And to be clear, China will accomplish
what the Soviets never could during the first base race.
They have a very achievable to launch architecture,
the national will and capabilities to put their astronauts on the surface of the moon.
And if America has not returned,
despite the decades of promises and the more than 100 billion invested,
the shockwave will be felt around the world.
Our allies will notice, our adversaries will notice,
every nation deciding whose technology to buy,
whose standards to adopt,
whose security guarantees to trust,
and whose vision of the future to follow will take notice.
And perhaps most importantly, our children will notice.
That is why we must remain focused on the objectives that matter,
why NASA was established in the first place.
There is no time anymore for lobbying against America,
interests are further tolerating the status quo. Only extreme ownership, competence, and action.
Those of us inspired by the pioneers and heroes of decades past know they set the bar high,
but we do not honor them by living forever on what they accomplished. This is our time to pick up
where they left off, return, and never give up the moon again, and then set our sights on Mars and
beyond. And none of this will be accomplished by NASA alone. We have the support of President
We have Congress, we have a clear mandate in the national space policy, but it will take brilliant
entrepreneurs, scientists, engineers, our allies, and Americans across the country who still believe
that great nations can do great things.
Because our children will either inherit the confidence of a nation still capable of the extraordinary
or the memory of one that used to be.
That responsibility, that choice belongs to all of us.
And I believe when history looks back on this moment, let it record that America
did not hesitate any longer.
We did not allow the bureaucracy, the complacency, the waste inaction,
or fear of failure to constrain what we could accomplish.
We chose to go, and we went.
Thank you.
All right.
Let's fucking go.
Let's go.
All right, everybody.
America.
Good job.
What do you want me?
Oh, right on the couch.
I was commenting backstage on.
I was commenting backstage on how easy it is for NASA to come and do speeches, given the content, the capacity to show visuals like this.
Can you imagine like housing and urban development trying to do a presentation?
No, we have unbelievable material to work with.
I'm thankful every day that I don't lead the IRS or social media.
Yeah, right.
Can we talk about, we don't have a lot of time.
So I know I want to move our way through the universe.
But can we start with the moon?
What is, is there a, you know, there's kind of this case that NASA makes about the new, the moon being the starting point for getting to Mars
but is the moon a potentially viable economy on its own?
Is there an industry to be built on the moon?
Is there an ongoing set of operations that could be established on the moon that makes sense
beyond just kind of testing equipment before we go to Mars?
Yeah, maybe, right?
So I think we are extremely fortunate.
We've been gifted a moon three days away to test out everything we need on this great adventure of discovery, right?
I mean, this is where you want to go to really dial in power, your spacesuits.
It's taken us decades to build replacement spacesuits from the Apollo era.
Let's test that out on the moon.
Habitation modules, certainly in-situ resource manufacturing, robotics, right?
I mean, you know, look, EVAs are fantastic.
Astronauts bouncing around on the moon is going to be highly inspirational.
That's like one of the last things you should do when you have a moon base.
is send somebody outside in that extremely dangerous environment, let robotics do it.
And in order to accomplish all of this, you have to send an extraordinary demand signal to industry.
I mean, over the next four years, we're talking dozens of landers, dozens of rovers,
lots of in-situ resource manufacturing experimentation.
You're giving industry all the opportunity in the world to figure out how to unlock value from the lunar regalith, right?
But I can't guarantee it, right?
And that's my point on the Department of Commerce.
They have a whole space commerce office that can work through that.
I am going to make sure that NASA, you know, can master the skills necessary to go to Mars for its scientific potential.
We'll put radio telescopes on the far side to inspire the next generation.
If along the way it ignites a lunar economy, that's fantastic.
But it costs an awful lot to get there, an awful lot to extract resources.
Jared.
Sorry, one second.
And then we have to map the South Pole to figure out where we're going.
Is that right?
And that's part of this Promise mission.
That's kind of the next big mission for the Moon.
So I'm glad you brought up Promise.
So we have mapped the lunar south pole.
There are only so many good landing spots.
And what do I mean by that?
I mean, surface area of the moon is like the size of Africa.
The south pole of the moon is like Washington, D.C.
And there's only so many good craters that have these permanently shaded regions,
which, by the way, I mean, that is a harsher environment than Mars itself.
That's where the water ice is.
But the crater cliffs can also give you near eternal access to light for solar power.
So there's only so many good landing spots.
And you think about when a vehicle the size of starship comes down on a lunar surface,
believe me, that's going to blast out of a little bit.
a little bit of craters and debris,
so really limited parking spots on that.
Promise is very awesome because Promise is a radio-isotope-powered rover
that we built as a spare, essentially,
for the two rovers, perseverance and curiosity
are on Mars right now.
And just to give you a sense, this thing is the size
of like a Jeep, okay?
So we have some P.U. 238 that's decaying right now.
You only get so much life out of it.
We want to take that, put it on Promise,
and send it to the moon, and it can go in and start prospecting
in those permanently shaded regions that,
I mean, almost any other hardware would die in.
It's a very good way to make use of taxpayer dollars
that have largely already been spent.
And Jared, you were informing me last night,
informing me last night and educating me on this specific
southern region of the moon being absolutely critical
for us to get to first versus China.
Why is it so critical that we get there before China,
and what's it gonna take to do?
to do that. And just as a follow-up to that, what was the state of NASA when you got there?
Because it did feel like they, since the space shuttle program, haven't been super focused
or effective, but correct me if I'm wrong.
Yeah, I mean, just to be clear, you're talking about some of the best talent in this nation
shows up to work at NASA every day, and they want to change the world and air and space.
And for a very long time, everybody was trying to run NASA other than the people themselves
that show up to work there.
I mean, like you heard from my remarks, you know, let's make everyone happy, let's spread our resources to every congressional district, let's collect 25 different flags to partner on the next mission that takes something that should cost a couple billion, which is very cool, like going and getting samples back from Mars that could lead to the most consequential discovery in human history and layer a bunch of other people on and make it cost more than a carrier and then it gets canceled right now. So NASA is back in charge now, right? We are in a space race. People are giving us the latitude to do what we need to do. And as a result, we are
extremely focused on the president's national space policy, return to the moon, build the base,
get underway nuclear power and the other things, and the workforce is responding well, and I'm
grateful alongside them. So we are in a different state today. Unfortunately, we don't have the
time necessary we'd like because years were lost in this now new space race. Now, the South Pole
of the Moon, again, we've been gifted a moon three days away to, to again, master those skills
to go to Mars. There's only so many good parking spots. The Chinese and the Russians know that,
They were going to launch a mission a couple weeks ago right to the Shackleton Ridge,
which maybe it was mechanical, maybe it was weather-related,
or maybe they were smart enough to know that if they actually did do it,
it probably would ignite one hell of a fire and urgency in us.
But that would have taken up one of like a couple critical parking spots.
They're going to build a base there.
They partner with Russia.
They're going to have a fission reactor there,
and they're going to do the exact same things we are,
which is interact with the water ice and get very good.
And then where are they going next?
The third space race, they're going to go to Marston.
they're going to go to Mars.
And then they'll have that massive Neil Armstrong-like moment
that will send a message around the world.
And we are very committed to not letting that happen.
What is the big technological leap
that you have to make from the current course in speed
to actually make Mars more realistic?
Is it propulsion and thrust as the main vector?
So I think there's a couple things there.
Look, robotics are going to be critical in all of this.
So if you chose a path that was purely like,
of which vehicles like Starship are going to be incredible at that.
Well, you will, no doubt, have the means to send astronauts to Mars.
They've already figured out habitability a long time ago,
and you're talking very comparable velocities,
whether you're going to the moon or Mars in that regard.
The hard part is how do you come back, right?
You're going to need to make propellant on Mars to do so.
And, you know, one solution to that to say is,
well, I'll have an army of robots that'll do it,
and I'll have football field size, you know,
solar panels and then the robots can dust them off from all the dust storms that will happen.
And then you'll make your own propellant and you'll come home.
The hard part is it's really challenging to do that under one atmosphere and one G here on
Earth.
I mean, you can see how many people show up at like Stage Zero at Star Base to launch a mission.
And by the way, that is the right way to kind of win the war, to put lots of mass on the
surface.
NASA can help that by kind of pivoting, by stop doing what industry is already doing really well
and invest in that next giant leap capabilities
that have no obvious business use case today,
which is fission power.
And then you can have chemically augmented
NEP spaceships, transfer vehicles,
and go to and from Mars,
and you don't need to refuel them until they come back.
And what you're refueling is Krypton or Xenon,
you're not having to make propellant on the surface of Mars.
That, to me, is how NASA works alongside industry
to invest in the capabilities that are necessary
for American leadership in space.
And by the way, those are the capabilities you want
to go to like Saturn's moon of Enceladus, to go to Titan, to go to Europa, where you have
you have oceans on two of those moons that could have still life in them.
We don't know.
How do you convince these incredible learned people to work for NASA versus SpaceX or other
private space companies now in a world where there's so many ways in which you can contribute?
So great.
I'm glad you asked that because it's a double down on nuclear, but right now we don't have a recruiting
problem initially. I mean, we take 1% of the intern applications that go into our pathway program,
which guarantee them a job at NASA. Then the question is, can you retain them? And if you're doing
exactly what SpaceX, Blue, Rocket Lab, Stoke, ULA, and others are doing in industry, except you're doing
it off, you know, 50-year-old shuttle hardware that, again, is not as efficient for missions
like going to the moon as Saturn 5 was, you're going to lose that workforce. So what do you need to do?
You know, when we have those near-impossible breakthroughs, and there is a business case,
like there certainly is for launch where you can be one customer or many,
you hand it off to industry and you pivot.
And that's how you retain talent that can only do these type of missions at NASA,
which is the nuclear NASA.
SR-1 is just the beginning.
That is our Nautilus.
There will be a grand fleet of nuclear-powered.
You need to stay on the frontier, essentially.
You need to constantly keep pivoting to the next new thing in the next thing.
Can you explain just really briefly a primer on how nuclear works for generating thrust?
Yeah, sure.
So actually, you can just think of a lot of the, like, say, Starlink satellites that you'd have up right now that use, you know, haul our ion thrusters right now.
They're generating electricity through solar power, and then they're using through electromagnetic forces.
They're ionizing either Krypton or xenon and then just basically accelerating it out of the thruster, which gives you very, very high, you know, exhaust velocity.
So it's extremely efficient, very low thrust, and you can use that propellant for a very long time.
in space, the faster the molecule shoots out the back, the more thrust it generates for the craft
to move forward. Yeah, I mean, it's just very low mass that you're actually, it's very low mass flow,
but highly efficient, right? So very efficient, high, you know, exhaust velocities. The idea, though,
is where that breaks down is the farther you get away from the sun. So once you get out towards
Jupiter, I mean, solar effectiveness is negligible, right? So what you're using is like a,
the thermal energy from a nuclear reactor, so 100 kilowatts, we'll scale it up to 250, who
knows maybe megawatt class, right? You're going to want to run that reactor as hot as you possibly
can, so that's your high temperature materials, and then you're going to convert it through like
a closed-brain cycle power conversion unit into electricity. And that electricity is then going to
power those same thrusters that you would see on Starlink's. It's just they're scaled up, right?
They're like 12 kilowatt, then 14-kil-watt, 25-kilwatt thrusters.
What is NASA's budget, and if you could have your druthers, what would it be?
I'm incredibly supportive of a... I've said it many times right now.
like NASA does not have a top line problem.
Like we are bad capital allocators and have been for a long time.
And a lot of that is based on NASA choices.
It's based on what other people forced us to do.
And that's changed.
We have $25 billion.
I mean, there's got, how many entrepreneurs are in this room?
Start up, $25 billion is a lot of money.
You can build some pretty incredible hardware with that.
You're one of the few entrepreneurs that actually has built a profitable company taking it
public.
You showed a picture of the blackbird up there.
And you sure that's the blackbird?
Well, okay. What was that picture that you showed up there?
Like I said, NASA is getting back in the business flying high and fast again.
I mean, that doesn't seem like a space vehicle. It seems like a Earth-air vehicle.
Yeah, so the first day in NASA is our aeronautics portfolio. And what we've contributed to over the decades, you may not realize this. Look, when you go see an F-22 fly at an air show and wow you, the fly-by-wire technology was us.
the thrust vectoring technology was us.
NASA has been contributing to breakthroughs in aeronautics,
both civil, commercial, and national security applications for a long time.
And again, kind of similar to the same theme, over the years,
we've been forced to spend our aeronautics budget
on, like, subsidizing high-tRL efforts from big prime contractors.
An engine that's 40 years old, they want to squeak 3% more fuel efficiency out of it,
get NASA to pay for it.
I'm like, are you kidding?
There is no way we are doing that.
you can underwrite that investment yourself for competitive reasons.
You know what I want to do?
I want to get back to the radical airframe and engine designs like we were always supposed to do,
and you're getting a little bit of a taste for that on the...
Tell us about the importance of having a human on these ships when we go to the moon,
when we go to Mars, versus if optimists figure these humanoid robotics are ready,
why would we risk a human life in these incredibly dangerous,
environments, is it ego? Is it we're trying to prove a point to have humans in the loop on these?
Or should we just be sending robots? Or it's our destiny, right? I mean, the same reason why we
cross the oceans and seas and climb the mountains, this is who we are. Would have many people
stopped pause from the discourse of our daily lives to look at those astronauts, go around the moon
on Artemis II if they weren't humans? I don't think so. Now, don't
get me wrong, we are going to need robotics. And there are some environments that, just whether
it's the radiation, that we can only do uncrewed, you know, robotic missions. But we can go to the
moon, as we've done before with our astronauts. We can go to Mars and we can continue on outward.
And robotics will absolutely play a critical role in that journey. What about then just like
the autonomous navigation systems, you talked about fly-by-wire. I mean, we still see even just
like last week the incident with Amazon Air. Now, this is
civil aviation, but the overrun is ridiculous. That air mode was pretty shocking to people, I think.
How do we push better and safer technologies and the more obvious solutions, even if that may
actually disintermediate human involvement? Well, just say that NASA has been playing a role
with air traffic, safety, and modernization for a long time. It was NASA that pioneered the
autonomous ground collision, avoidance software. So, I mean, it's saved, I mean, countless
lives of fighter pilots pull too many Gs, they black out, the nose of the aircraft's point
at the ground, the aircraft recognizes it and safely recovers it. That was NASA work. But I will, I mean,
to your point, and we are obviously very involved as you think about a world that's going to have,
who knows, like millions of drones flying around delivering us medicine and other things. Like,
we have to work very closely to the FA on that. But I will tell you, we are thinking about,
you know, AI and autonomous applications within the missions we're designing right now. Like one mission
going to Venus, Da Vinci, it will not last long in that high pressure environment, right?
We are going to only have so much time to gather as much information as we can to update,
you know, kind of the trajectory of the vehicle.
This is not interesting.
Disregard.
This is interesting.
I'm turning in that direction.
We've already tested this with some of our rovers on Mars.
And in my last dying breath, this is what I choose to send back, you know, to the scientists on
Earth to understand this environment.
And that's just one step towards a direction that will inevitably include more.
more autonomy in our crude and uncrewed spacecraft.
And how do you think about allocation of capital resources, Jared,
to some of the scientific discovery, the observational systems,
future platforms for observational for deep space research?
Is there a view in your mind?
It should be a 5% of budget.
Like, how do you think about rationalizing where we go with the spend there?
Yeah, I mean, I would say right now science is approximately call it a third,
of NASA's budget. We recently reorganized, but your main mission directorates right now are
human space exploration, which covers both the great work we're doing in the international
space station as well as missions to example the moon and building a moon base. You have your
research technology mission directorate, which is shouldering most of the nuclear NASA effort,
and then you have your science mission directorate. And how I think about this is like you have to
take advantage of commercial industry right now. Again, there's no one would doubt that launch
observation communications are real services where NASA is one customer of many. You've got all these
great companies that are printing out satellites again for Earth observation, whether it's for
national security reasons or otherwise, like leverage it for agriculture, leverage it for Earth
sciences, give them the instruments if necessary, license it to them, free up resources to do what
industry is not going to want to take on, which is building a nuclear-powered octocopter to go to
Saturn's Moon of Titan. So free up as much research as we can to do that. And I would always
prioritize getting new missions out there to unlock the secrets of the universe versus the researchers.
If we get the data, there'll be plenty of brilliant people at institutions around the country
that will want to analyze it, but what's the point if you can't launch those next mission?
As we wrap up, can we watch the video of the helicopters on Mars and you just tell us about
the timelines to this becoming reality first?
Oh, absolutely.
Yeah.
So here it is, coming in.
There it is.
Yeah, I mean, how cool is this?
I mean, I'm telling you, you can't do this at HUD.
Or IRS.
You imagine IRS putting out a video like this?
I only made the Irish joke because I know.
Here's the auditor.
I mean, it is really incredible.
So what's the status of this program?
So we tested one, ingenuity on our last rover mission to Mars.
It did fantastically well.
I mean, can you imagine?
This is near vacuum, by the way, on Mars.
It's like a 10th atmosphere, right?
You know, fractional that are flying around.
Now we're going to send three of these with ground penetrating radars, which I think is just awesome.
But most importantly, how it got there, it got there under nuclear power, true fission-powered,
100 kilowatt spacecraft that flew by Mars and released it.
This will launch in 28.
We believe it's approximately a year before the helicopters will get there.
We're still doing some trades, but absolutely extraordinary mission and the start of many more.
I mean, again, think about it.
There is so much we can learn on the moons within our own solar system.
Some really shocking discoveries are just waiting for us in our own backyard.
Who's going to test pilot the blackbird?
That's not the blackbird.
We have a lot of talented folks.
Hey, Jared.
Jared, you mentioned China.
At all levels of the organization.
Exactly.
At all levels of the organization.
Jared.
I know we got to wrap, but you mentioned China and Russia collaborating together.
Just wanted to double-click on that.
What are their capabilities?
Russia can't even take Kiev, and they've been out of war for four years.
Are they capable of getting to space and doing anything of material?
I mean this genuinely.
Please come back.
But then China.
China is copying a lot of what, you don't have to listen to Chimov.
This is a serious question.
China is copying a lot of what Elon's doing in real time.
Yes.
And what's their actual capability if we assume Russia is up against it and they're broke?
And am I correct that Russia's up against it and they're broke?
I would just say, I mean, look, obviously have a great appreciation for the history of the Russian and Soviet space program.
I mean, like I said in my remarks, they came out of the gate hot first, you know,
astronaut in orbit, for spacewalk.
They've done a lot of great things and they contribute to us today and collaborate on
the International Space Station.
But yes, they have a conflict and they're prioritizing resources there.
The Chinese are an incredible rival in space right now.
Yes, they don't have the same reusable launch capabilities that SpaceX and others have, but
what they do put in space, even if they brute force it there with hypergall-powered thrusters
or hypergall-powered rockets akin to like Titan 2 of decades past, what goes in space?
is good. And I think there were some pretty interesting developments that came out of AFA today
that our Secretary of Air Force and others in the Space Force said that enlightened, I think,
the general public about how contested that environment is. The bottom line is the Chinese are
extremely good in space right now. You couple that with some Russian capabilities on nuclear power.
They will return to the moon. They will get to the moon and they will build a base on the
South Pole. And where would we be if we didn't have SpaceX in relation to China?
I mean, SpaceX are, I mean, they're incredible. I mean, they're our most important launch
partner. We can't send astronauts to and from the space station without them. We can't have downmass of
our science experiments from the space station without them. The Nancy Grace Roman telescope that's
going out to pursue the secrets of the universe was launched on a Falcon heavy not that long ago.
We are fortunate there's a lot of great companies in commercial space right now.
But I mean, the United States would be seriously challenged in the high ground of space without
their capabilities. Jared, I'm not a huge fan of government, but I think NASA plays one of the
most important roles for humanity that no individual organization outside of government can play.
I cannot think of a better person to lead it. I think you're an inspiration to so many.
Absolutely. And I truly, honestly, respect your service that you've provided to this country and to the
world. We're so lucky to have you. Thank you for being here.
Grateful every day. Thank you all. Thank you. Thank you. Thank you. Thanks for coming.
