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eval-driven-dev

Instrument Python LLM apps, build golden datasets, write eval-based tests, run them, and root-cause failures — covering the full eval-driven development cycle. Make sure to use this skill whenever a user is developing, testing, QA-ing, evaluating, or benchmarking a Python project that calls an LLM, even if they don't say "evals" explicitly. Use for making sure an AI app works correctly, catching regressions after prompt changes, debugging why an agent started behaving differently, or validating output quality before shipping.

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Source facts

Repository
merceralex397-collab/meta-skill-engineering
Last source activity
April 20, 2026 at 01:25
Detected SKILL.md language
English
Stars
2
Forks
0

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