Vadlamani | Mastering PostgreSQL in the Cloud | Buch | 979-8-8688-3185-0 | www.sack.de

Buch, Englisch, 173 Seiten, Format (B × H): 178 mm x 254 mm

Vadlamani

Mastering PostgreSQL in the Cloud

AI-Driven Solutions Across AWS, Azure, and GCP
1. Auflage 2026
ISBN: 979-8-8688-3185-0
Verlag: APRESS L.P.

AI-Driven Solutions Across AWS, Azure, and GCP

Buch, Englisch, 173 Seiten, Format (B × H): 178 mm x 254 mm

ISBN: 979-8-8688-3185-0
Verlag: APRESS L.P.


PostgreSQL is no longer just a database; it is the backbone of modern, intelligent applications. This book shows you how to take PostgreSQL to the next level by combining advanced database techniques with AI-driven automation and multi-cloud strategies.

You will learn how to deploy PostgreSQL across AWS, Azure, and Google Cloud, implement serverless and Kubernetes-based architectures, and design for high availability, disaster recovery, and multi-region resilience. Along the way, you will explore how AI can support query optimization, anomaly detection, observability, and real-time analytics. The book also covers pgvector for semantic search, Retrieval-Augmented Generation, or RAG, for intelligent data retrieval, and in-database machine learning using PGML.

Security and compliance are addressed through practical coverage of Zero Trust models, IAM federation, and AI-enhanced threat detection. Hands-on labs, AMIs, and templates help you apply these techniques in real-world environments, from cloud-native deployments to enterprise-scale PostgreSQL operations.

By the end of the book, you will have the skills to design, secure, automate, and optimize intelligent PostgreSQL systems for the AI era.

What You Will Learn

  • Design multi-cloud PostgreSQL architectures across AWS, Azure, and GCP
  • Implement AI-driven workflows for query optimization and anomaly detection
  • Use pgvector and RAG for semantic search and GenAI-powered data retrieval
  • Deploy in-database machine learning with PGML
  • Secure PostgreSQL with Zero Trust, IAM federation, and AI-enhanced threat detection
  • Agentic AI development and deployment for PostgreSQL management
  • Manage PostgreSQL on Kubernetes using cloud-native operators

Who this Book Is For

Senior database administrators, system architects, and cloud engineers who want to master advanced PostgreSQL deployments in multi-cloud environments. It’s ideal for professionals looking to integrate AI-driven workflows, optimize performance, and build secure, scalable database systems for enterprise and real-time applications.

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Zielgruppe


Professional/practitioner


Autoren/Hrsg.


Weitere Infos & Material


1. Cloud Architecture for PostgreSQL and AI-Ready Systems.- 2. Kubernetes, PostgreSQL, and Multi-Cloud Strategies with AI Integration.- 3. PostgreSQL Extensions for AI Workloads.- 4. Indexing Strategies and AI-Assisted Optimization.- 5. OpenAI Integration and PostgreSQL AI Extensions.- 6. Benchmarking and AI-Driven Performance Tuning.- 7. AI Integration with PostgreSQL Workflows and Automation.- 8. Security, IAM, and AI-Powered Threat Detection for PostgreSQL.- 9. Serverless PostgreSQL and AI-Optimized Architectures.- 10. PostgreSQL + GenAI and Machine Learning Integration.


Venkateswara Vadlamani is an experienced database professional with more than 30 years of expertise as a database administrator and system administrator. He has delivered solutions for high availability, distributed databases, and real-time data synchronization for Fortune 500 corporations in Singapore, Australia, and the United States.

Vadlamani holds certifications as a Solaris Certified System Administrator, Oracle Certified DBA, and AWS Certified Solutions Architect, and earned an MBA in Information Technology. Currently, he works as a Senior Oracle and PostgreSQL Consultant, focusing on implementing PostgreSQL projects on AWS, Azure, and Google Cloud with Artificial Intelligence on Linux operating systems in Southern California.

The ideas, scripts, and examples presented in this book are based on his extensive hands-on experience, including projects using his personal AWS account on EC2 and RDS.



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