Engineering Agent Observability
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Home > Computer programming / software engineering > Object-oriented programming (OOP) > Engineering Agent Observability: Designing Reliable Monitoring, Tracing, Evaluation, and Diagnostics for Production AI Agent Systems
Engineering Agent Observability: Designing Reliable Monitoring, Tracing, Evaluation, and Diagnostics for Production AI Agent Systems

Engineering Agent Observability: Designing Reliable Monitoring, Tracing, Evaluation, and Diagnostics for Production AI Agent Systems


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About the Book

I still remember the night our flagship multi-agent system went rogue. The traditional APM dashboard was glowing green, reporting zero latency spikes and perfect server health. Yet, our users were receiving completely fabricated answers. The AI was trapped in a silent failure loop, recursively calling the wrong tools and bleeding API tokens by the thousands. We were flying completely blind.

That disaster forced me to rethink everything I knew about system monitoring. I realized that traditional APM couldn't read a prompt, understand vector drift, or measure semantic relevance. We had to build a brand-new telemetry pipeline from scratch. I wrote this book so you don't have to learn these hard lessons at 3:00 AM while watching your API costs skyrocket. I am handing you the exact playbook that transformed our fragile AI experiments into robust, enterprise-grade pipelines.

What's inside
  • The Tooling Landscape: A comprehensive breakdown of open-source and commercial titans like Arize Phoenix, LangSmith, Honeycomb, and Datadog-helping you avoid costly vendor lock-in.
  • Hands-on Implementation: Copy-and-paste boilerplate code for wrapping standard API calls, tracking token usage, and injecting W3C Trace IDs across distributed systems.
  • Mastering the RAG-Triad: Automated strategies to programmatically evaluate Context Relevance, Groundedness, and Answer Relevance on live production traces.
  • Agentic Tracing: Learn to visualize multi-turn agent execution loops (Thoughts, Actions, Observations) using hierarchical spans.
  • Glossary & Research: A deep dive into core terminology (like TTFT, Drift, and Span) alongside curated, seminal academic papers.
Who it's meant for

This book is tailor-made for Machine Learning Engineers, Site Reliability Engineers (SREs), Backend Developers, and Technical Leads who are transitioning AI applications out of the sandbox and into production. If you are building RAG pipelines or autonomous agents and find yourself staring at unstructured logs trying to figure out why your LLM hallucinated, this book is your ultimate lifeline.

Your AI system is a black box, and hope is not a monitoring strategy. Stop guessing why your agents fail and start engineering them to succeed. Grab your copy today, inject your very first OpenTelemetry span, and take total control over your generative AI pipelines!


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Product Details
  • ISBN-13: 9798193501282
  • Publisher: Independently Published
  • Publisher Imprint: Independently Published
  • Height: 244 mm
  • No of Pages: 222
  • Returnable: N
  • Sub Title: Designing Reliable Monitoring, Tracing, Evaluation, and Diagnostics for Production AI Agent Systems
  • Width: 170 mm
  • ISBN-10: 8193501284
  • Publisher Date: 18 Aug 2026
  • Binding: Paperback
  • Language: English
  • Returnable: N
  • Spine Width: 12 mm
  • Weight: 412 gr


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