Architecting at Scale: A Practical Guide to Large-Scale System Design: From Monolith to AI-Native, Beyond Scaling Servers

Architecting at Scale: A Practical Guide to Large-Scale System Design: From Monolith to AI-Native, Beyond Scaling Servers book cover

Architecting at Scale: A Practical Guide to Large-Scale System Design: From Monolith to AI-Native, Beyond Scaling Servers

Author(s): Imran Siddique (Author)

  • Publisher Finelybook 出版社: Packt Publishing
  • Publication Date 出版日期: August 28, 2026
  • Edition 版本: 1st
  • Language 语言: English
  • Print length 页数: 590 pages
  • ISBN-10: 1807420973
  • ISBN-13: 9781807420970

Book Description

“This book makes a compelling case that experimentation is not a process layered on top of architecture, but a property the architecture itself must support.”- Scott Hanselman, VP, Member of Technical Staff, Microsoft and GitHub

Key Features

  • Apply Scale by Subtraction to improve reliability while controlling cost and complexity
  • Evolve ShopFlow from MVP to a global platform through realistic architectural trade-offs
  • Implement Zero Trust, database sharding, FinOps, and AI-native self-healing
  • Purchase of the print or Kindle book includes a free PDF eBook

Book Description

Scale systems confidently by knowing when to simplify instead of adding complexity. You’ll learn to distinguish temporary demand spikes from sustained growth, align architecture with business goals, and make decisions that improve reliability, cost efficiency, and delivery speed using measurable ROI instead of assumptions.

Following the evolution of ShopFlow from startup MVP to a global AI-native platform, you’ll tackle real-world trade-offs in application design, data, security, infrastructure, and operations. Through practical scenarios, you’ll determine when to scale vertically or horizontally, decouple services, shard databases, implement Zero Trust security, and introduce AI-driven automation. Along the way, you’ll apply the Scale by Subtraction framework to eliminate unnecessary complexity, reduce operational overhead, and improve system resilience without overengineering.

Written by Imran Siddique, a Principal Group Engineering Manager at Microsoft with over 17 years of experience building hyperscale systems, this book draws on expertise from Azure SQL, Azure DevOps, Azure Copilot, and other large-scale Microsoft platforms.

By the end of this book, you’ll be able to make evidence-based architectural decisions and design distributed systems that scale sustainably without unnecessary cost or complexity.

What you will learn

  • Apply Scale by Subtraction to reduce system complexity
  • Distinguish temporary traffic spikes from sustained growth
  • Use tipping-point metrics to guide service decoupling
  • Shard databases while preserving data integrity
  • Secure distributed systems with Zero Trust and mTLS
  • Balance delivery velocity, availability, and FinOps
  • Design AI-native infrastructure with autonomous agents

Who this book is for

Software architects, engineering directors, CTOs, and senior or staff engineers who need to scale systems, teams, and operational practices without introducing unnecessary complexity. A fundamental understanding of cloud computing and basic familiarity with AI applications are recommended; no specific language, vendor, or technology stack is required.

Table of Contents

  1. The Scalability Mindset – When and Why to Scale
  2. Core Principles of Scalable Architecture
  3. Security-First and Compliance-First Architecture
  4. Scaling the Global Delivery Layer – Edge, CDNs, and Beyond
  5. Scaling the Modern Web Application – State, Performance, and Micro-Frontends
  6. Architecting Scalable Services – Decomposition and API Design
  7. Scaling Service Infrastructure – Resilience, Mesh, and Compute
  8. Event-Driven Scaling – Decoupling with Messaging
  9. Caching Strategies – Faster and Cheaper Scaling
  10. Scaling Data and Databases – Storage, Queries, and Beyond
  11. Observability – Seeing and Understanding Your System
  12. Resilience and High Availability – Designing for Failure
  13. Performance Tuning and Capacity Planning
  14. Cost Optimization and Efficiency (FinOps)
  15. AI-First Architecture: Pragmatism Over Hype
  16. Continuous Experimentation and the Future-Proof System

Editorial Reviews

Editorial Reviews

Review

“Architecting at Scale makes a compelling case that experimentation is not a process layered on top of architecture, but a property the architecture itself must support. By treating delivery metrics as measures of a system’s ability to evolve, it reframes ‘future-proofing’ as the discipline of making change small, observable, and reversible.”
Scott Hanselman, VP, Member of Technical Staff, Microsoft and GitHub
“Architecting at Scale is a practical guide to evolving production systems for the AI era. Its treatment of agent governance makes an important point: autonomy must be earned, bounded, and controlled at runtime.”
Perraju Bendapudi, Senior Technical Fellow, Typeface
“Architecting at Scale is a practical guide that connects architecture decisions to the operational and economic outcomes engineering leaders actually own.”
Adrian Cockcroft – Technology Advisor at OrionX
“Most teams I work with put their guardrails in the prompt and call it governance. This book makes the harder and more useful argument, that the control belongs between the agent’s decision and its action. Earned autonomy and runtime enforcement are the two ideas the industry has not caught up to yet.”
Rakesh Gohel, Founder, JUTEQ

About the Author

Imran Siddique is a Principal Group Engineering Manager at Microsoft with over 17 years of experience shaping the evolution of Azure. Currently, he leads the global engineering team powering Azure Copilot and AI experiences across GitHub and VS Code. Previously, Imran built critical platforms for Azure for Industries, Azure DevOps, and SQL Azure. He also directed the growth of Microsoft Learn, the company’s global training ecosystem. A winner of multiple Microsoft Global Hackathon Executive Challenges, Imran specializes in high-performance distributed systems and holds a BTech in Computer Science from VJTI.

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下载地址

PDF, EPUB | 56 MB | 2026-09-06
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