Agentic AI Harness Pattern / Najlacnejšie knihy
Agentic AI Harness Pattern

Kód: 52383053

Agentic AI Harness Pattern

Autor Grace Huang, Ken Huang

Most AI tutorials teach you prompts. This book teaches you patterns.Production AI engineering - the discipline of turning a language model into something reliable, safe, auditable, and shippable - is mostly undocumented. The libra ... celý popis

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Anotácia knihy

Most AI tutorials teach you prompts. This book teaches you patterns.



Production AI engineering - the discipline of turning a language model into something reliable, safe, auditable, and shippable - is mostly undocumented. The libraries churn every quarter. The patterns endure.



Agentic AI Harness Pattern distills 15 of those patterns by reading two mature production codebases side by side: Claude Code, Anthropic's TypeScript CLI for agentic coding, and Hermes, a Python agent built to run across messaging platforms. The two systems make different language choices, different concurrency choices, and different deployment choices - but the harness pattern they implement is the same.



Every chapter follows the same rhythm:

Inside the 15 patterns


  1. The Harness Paradigm - why a model alone is not a product

  2. Tool Architecture and the Tool Contract - the boundary between reasoning and consequence

  3. The Query / Agent Loop - what happens between the model's tool call and the next turn

  4. Permission Systems and Safety Guardrails - gating the destructive set

  5. Tool Orchestration and Execution - partitioning safe vs. serial work

  6. Context Management at Scale - the five strategies before compaction

  7. Multi-Agent Coordination - when one agent isn't enough

  8. Memory Systems and State Persistence - three tiers, one cache

  9. Observability and Debugging - distributed tracing for non-deterministic systems

  10. Production Deployment Patterns - SDK-first vs. gateway-first

  11. Hook / Event-Driven Automation - the layer above the loop

  12. The Skill System Pattern - capabilities as content, not code

  13. MCP Integration - connecting agents to the world

  14. Model Routing and Provider Abstraction - falling back without falling over

  15. Structured Output and Schema-Constrained Generation - when free text isn't enough


Who this book is for



Each chapter stands alone. Read what you need; read end-to-end and the patterns compound. Either way, you'll close the book with a working mental model of how to design an AI agent that survives contact with production.


About the authors


Ken Huang is CEO of DistributedApps.ai, advising organizations on production-grade agent deployment at the intersection of AI, distributed systems, and security.



Grace Huang is a Product Manager and AI Engineer at PIMCO, where she ships AI features for the world's largest fixed-income asset manager. Her focus is the engineering rigor that makes AI products trustworthy in regulated environments.



The model is intelligence. The harness is the system.

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