1 link tagged with all of: ai + learning-loop + token-capital + human-capital
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Satya Nadella argues that companies should build a continuous learning loop combining human capital—expertise, judgment, relationships—with token capital—their own AI models—to create compounding institutional IP. He warns against a few dominant AI systems capturing all value and calls for private evals, reinforcement learning, and architectures that let firms swap general models without losing proprietary expertise.
- Companies should pair "token capital" (their own AI models) with human capital in a feedback loop where each amplifies the other, rather than treating AI as a static tool
- Firms need private evals and reinforcement learning based on internal outcomes (sales lift, error reduction) instead of public benchmarks, so they can swap general models without losing proprietary expertise
- If AI value concentrates in a few dominant providers, it risks hollowing out industries the way early globalization did
- The real competitive battle is building a compounding, firm-specific learning loop rather than owning the best large model