Big Tech companies, like Microsoft (MSFT) and Alphabet (GOOGL), invested billions of dollars in AI startups...
Those startups, in turn, spent money on Big Tech's cloud infrastructure and chips.
It was the first phase of AI's circular economy. Now, another loop is forming... AI competitors are starting to recycle one another's computing power.
AI research firm Anthropic recently approached social media giant Meta Platforms (META) to lease its AI data-center capacity. The potential agreement could be worth as much as $10 billion over two years.
At the same time, Meta is spending heavily to build AI models that can compete with Anthropic's Claude Code.
This is fueling concerns that Meta is falling behind in the AI race... and preparing to hand valuable resources over to a fierce rival.
But, as we'll explain, Meta's excess computing capacity could actually strengthen its AI strategy...
AI companies need tons of computing power to train large language models and run them for millions of users. The most popular models are consuming capacity faster than developers can secure it.
Anthropic's fastest-scaling enterprise product, Claude Code, has fueled a surge in demand. The company is now seeking infrastructure wherever it can find a reliable supplier.
The company reportedly signed a three-year, $45 billion agreement with SpaceX (the parent company of fellow competitor xAI). Under that agreement, Anthropic would pay $1.25 billion per month for computing power.
Now it's in talks with Meta.
Meta plans to spend as much as $145 billion this year, much of it on AI. That's more than double the roughly $72 billion it spent on the technology last year.
The company doesn't care if its servers belong to a rival. Meta just needs reliable computing power... and it's prepared to pay a lot for it.
Investors are worried that the aggressive build-out will eat into Meta's returns...
But along with developing models, Meta is expanding its computing capacity. Management acknowledged that the company may build more capacity than its own AI products need.
Leasing that spare capacity would turn a potential weakness into a revenue-producing asset. And because it's such a precious asset, Meta can charge top dollar.
That's an important point because investors expect Meta's returns to deteriorate. We can see this through our Embedded Expectations Analysis ("EEA") framework.
The EEA starts by looking at a company's current stock price. From there, we can calculate what the market expects from the company's future cash flows. We then compare that with our own cash-flow projections.
In short, it tells us how well a company has to perform in the future to be worth what the market is paying for it today.
Meta's Uniform return on assets ("ROA") has been at least 26% every year since 2021, more than twice the 12% corporate average. At Altimetry, we analyze earnings with Uniform Accounting to avoid the distortions of traditional accounting methods.
Even if the company sells some of its new computing power at top dollar, investors expect its Uniform ROA to fall to just 17% in the next few years. Take a look...
Their outlook assumes that Meta's infrastructure will become less productive as spending rises. But if Meta can lease its excess capacity at a premium, its returns may not fall as far as the market expects.
Companies like Meta are selling computing capacity to competitors before their own AI products use up everything they've built.
Meta's infrastructure also supports internal products, advertising tools, and enterprise services.
That creates several paths to returns from the same asset base.
Right now, the market is concerned about Meta's infrastructure growth. And it's underestimating the company's AI business model.
But management has planned ahead... Meta can continue developing advanced AI models while collecting revenue from its competitors.
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