Goldman warns declining token prices may hinder investment growth

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The price of running AI just fell off a cliff, and Goldman Sachs thinks that’s a problem for the companies spending hundreds of billions to build the infrastructure behind it. Goldman’s Delta One trading desk issued a warning in September 2026 about the structural risks facing hyperscalers as the cost of AI model usage tokens collapses faster than demand can grow. The Silicon Data LLM Token Expenditure Index dropped 29% in August 2026, landing at a record low of $0.97 per million tokens. That’s more than 50% below its May 2026 peak of roughly $2.05. The math isn’t mathing Rich Privorotsky, head of Goldman’s Delta One desk, pointed to two converging forces crushing per-token pricing for cloud inference: the rapid improvement of proprietary models (which can do more with less) and the rising tide of open-source alternatives that undercut commercial offerings on price. Goldman flagged a scenario where token prices fall 30% but usage only grows 10%, a gap that would eat directly into revenue from AI infrastructure investments. That’s not a hypothetical. It’s roughly what August’s numbers suggest is already happening. The companies caught in this squeeze are the biggest names in tech: M...

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