AI Engineering Guide

Practical guide for building production ML systems based on Chip Huyen's AI Engineering book. Use when users ask about model evaluation, deployment strategies, monitoring, data pipelines, feature engineering, cost optimization, or MLOps. Covers metrics, A/B testing, serving patterns, drift detection, and production best practices.

diegosouzapw Updated 54 repo stars

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npx skillmds@latest add diegosouzapw/ai-engineering-guide