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OpenClaw AI in Production Architecture, design patterns, and engineering practices for AI agent platforms



OpenClaw AI in Production Architecture, design patterns, and engineering practices for AI agent platforms | 12.27 MB

Title: OpenClaw AI in Production Architecture, design patterns, and engineering practices for AI agent platforms
Author: Ken HuangLanguage: English | 422 Pages | ISBN: 9781807785017



Description:
Build production grade AI agent platforms on OpenClaw with security, state management, and resilience patterns that are held under real load

DRM-free PDF version + access to Packt's next-gen Reader*

Key Features
Apply a reusable pattern language, from Hub and Spoke to Heartbeat Loop across any agent stack
Embed zero trust identity, PBAC, and fault injection into your architecture from the first chapter
Deploy OpenClaw with observable, self correcting infrastructure ready for federated and edge runtimes
Book Description
Shipping a working agent prototype is easier than keeping it reliable under concurrent sessions, real-world tool failures, and adversarial inputs. Most AI tutorials leave this engineering discipline unaddressed.

This book works through that discipline using OpenClaw, an open-source AI agent operating system, as a practical reference platform. Each chapter opens with a realistic production challenge, such as a cascade failure or a prompt injection attempt, then dissects the relevant OpenClaw internals, identifies the pattern that addresses it, and closes with an implementation checklist and a hands-on exercise.

You will move through the six-phase request pipeline, distributed session state and compaction, zero-trust identity and policy-based access control, hook-based observability and self-correcting stacks, chaos engineering for agent runtimes, and high-throughput concurrency patterns. Security is not treated as a final chapter. Token exchange, mTLS, and sandboxing appear throughout the book and within every architectural section, just as they should in the systems you build.

By the end, you will be able to design, operate, and scale production AI agent platforms with the engineering rigor of distributed databases and service meshes, and extend them to federated, edge-deployed, and decentralized architectures.

What you will learn
Design a Gateway control plane that scales horizontally without coupling
Route requests through a six-phase pipeline without creating latency bottlenecks
Implement zero-trust identity and Token Exchange as structural, not add-on, concerns
Manage distributed session state with safe compaction and CRDT-friendly design
Instrument agent reasoning with semantic observability beyond uptime monitoring
Inject faults deliberately to verify that resilience patterns hold under load
Extend OpenClaw toward federated gateways and decentralized identity meshes
Who this book is for
AI engineers, platform architects, and senior software engineers building autonomous agent systems in production. Readers should be comfortable with Python, distributed systems concepts, and REST or WebSocket APIs. Familiarity with OpenClaw's core architecture and components is recommended, as the book focuses on production implementation patterns rather than introductory concepts.

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Tags : OpenClaw, AI, Production, Architecture, design


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