Master Claude Code as an agentic coding and engineering platform for building governed AI workflows, autonomous agents, developer tooling, and enterprise-ready automation through practical patterns and deployment strategies
Claude Code is evolving from a coding assistant into a programmable platform for building intelligent development workflows. As teams adopt AI-assisted development, the challenge is no longer just generating code but building reliable systems that can be extended, governed, and integrated into daily work. This book shows how to turn Claude Code into a structured development platform.
You will learn to add persistent project context, create reusable capabilities, coordinate agents, automate routine checks, and connect Claude Code with the tools behind modern delivery. Drawing on concrete engineering examples, the book covers scalable workflows for individual projects, teams, and enterprise environments. You will discover ways to improve consistency, enforce standards, manage risks, and keep control as AI becomes part of the development lifecycle.
Through hands-on examples, you will build extensible workflows, integrate external systems, automate governance, and support continuous delivery. The book also covers security, debugging, cost management, and adoption strategies that help teams move from experimentation to production use. By the end, you will be able to design and manage Claude Code-powered environments that improve productivity while supporting quality, reliability, and maintainability.
This book is for full-stack developers, software engineers, DevOps practitioners, technical architects, engineering managers, and AI enthusiasts who want to integrate Claude Code into modern software delivery processes. Readers should have basic programming knowledge and familiarity with development tools. Whether you are exploring AI-assisted development for personal productivity or implementing organization-wide automation, this book provides the architectural understanding and practical guidance needed to build governed, efficient, and extensible AI-powered development workflows.
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Jia Huang is an AI researcher at A*STAR, Singapore, and a technical author who writes about how AI agents are engineered. He is the author of Designing AI Agents and RAG from First Principles. He proposed the dual-axis framework for agent design patterns, which classifies patterns by cognitive function and execution topology, and the Pattern Selection Card, a practical method for choosing patterns under real cost and latency constraints. His work focuses on the engineering that surrounds the model rather than the model itself: context, tools, execution environments, and governance. He writes in both Chinese and English.
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