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ai-scientific-discovery-jumper

Guidance for building AI systems for scientific discovery, based on lessons from AlphaFold's development. Use when designing ML systems for scientific domains, planning validation strategies using blind benchmarks, deciding how to release scientific AI tools for maximum impact, evaluating data acquisition vs architectural research investment, building tools for domain expert adoption, structuring ML research projects with compute budgeting, or assessing when a scientific AI tool has crossed the relevance threshold for real-world use.

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Source facts

Repository
jona/ycombinator-skills
Last source activity
January 28, 2026 at 03:42
Detected SKILL.md language
English
Stars
4
Forks
3

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