Harvendra Singh Amit Prasad Singh Architecting Secure AI-Native and ML Cloud Systems on Azure

Architecting Secure AI-Native and ML Cloud Systems on Azure

von Harvendra Singh Amit Prasad

Design Patterns for Building Intelligent, Trusted, and Scalable Platforms

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Beschreibung

Modern cloud platforms are evolving into intelligent systems that can sense, reason, and act in real time. This book shows you how to design these next-generation platforms by embedding AI and ML directly into cloud architectures. Moving beyond traditional batch processing, the book introduces AI-native principles and the signals-to-insights-to-actions paradigm, helping you build systems that continuously learn and respond.

You’ll explore core architectural patterns, including event-driven design, scalable data and ML pipelines, and real-time inference using Azure services such as Event Grid, Azure Machine Learning, and Kubernetes Service. The book also covers MLOps, model serving, observability, and resilience—making sure your systems are production-ready and scalable.

Security and governance remain central throughout, with guidance on Zero Trust, identity-first security, responsible AI, and compliance. By the end, you’ll have a clear blueprint for architecting secure, intelligent cloud systems that deliver real-time, trusted outcomes at scale.

What You Will Learn:


Modern cloud platforms are evolving into intelligent systems that can sense, reason, and act in real time. This book shows you how to design these next-generation platforms by embedding AI and ML directly into cloud architectures. Moving beyond traditional batch processing, the book introduces AI-native principles and the signals-to-insights-to-actions paradigm, helping you build systems that continuously learn and respond.

You’ll explore core architectural patterns, including event-driven design, scalable data and ML pipelines, and real-time inference using Azure services such as Event Grid, Azure Machine Learning, and Kubernetes Service. The book also covers MLOps, model serving, observability, and resilience—making sure your systems are production-ready and scalable.

Security and governance remain central throughout, with guidance on Zero Trust, identity-first security, responsible AI, and compliance. By the end, you’ll have a clear blueprint for architecting secure, intelligent cloud systems that deliver real-time, trusted outcomes at scale.

What You Will Learn:

Who This Book Is For:

Cloud architects, developers, and AI/ML engineers who want to build secure, intelligent systems on Azure


Emphasizes real-world design patterns over theory, grounded in Azure implementations Bridges the gap between architecture, engineering, and responsible AI practices Combines cloud, AI/ML, and security (Zero Trust) into a unified design approach

Autor*in

Harvendra Singh

Themen in »Architecting Secure AI-Native and ML Cloud Systems on Azure«

AI-Native Architecture Azure Cloud Cloud-Native Systems Event-Driven Architecture Distributed Systems MLOps

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Details

ISBN: 9798868833557
Verlag: APRESS
Erscheinung: 23.03.2027

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