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Observability in the AI-Native Era

Observability in the AI-Native Era

By : Hilliary Lipsig, Andreas Grabner, Robert Rati
4.5 (2)
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Observability in the AI-Native Era

Observability in the AI-Native Era

4.5 (2)
By: Hilliary Lipsig, Andreas Grabner, Robert Rati

Overview of this book

Observability is mandatory for building and operating cloud-native distributed systems. Tools like OpenTelemetry have standardized how observability data is sourced, and AI now transforms how we extract value from the vast amounts of observability data generated by modern systems. This book guides you in implementing scalable observability, improving engineering efficiency with AI, and integrating observability throughout the Software Development Lifecycle (SDLC) via modern self-service internal developer platforms. You'll start with observability basics and learn how AIOps enhances signal correlation, anomaly detection, and root-cause analysis. Using real-world examples, the book demonstrates how to implement AIOps, build proactive detection pipelines, and automate diagnostics and remediation. You'll explore best practices for expanding observability using OpenTelemetry, Prometheus, Grafana, Dynatrace, Datadog, and New Relic alongside machine learning models, ensuring your systems are accurate, efficient, and secure. You'll also learn how to benchmark, measure, and secure your AIOps implementation, and gain a practical understanding of software compliance and how it applies to your systems. By the end of this book, you'll be ready to design and deliver AIOps-enabled observability solutions that make cloud-native systems more resilient, efficient, and secure.
Table of Contents (17 chapters)
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1
Part 1: From Monitoring via Observability to AIOps
6
Part 2: Expanding Left: Moving AIOps into Platform Engineering
10
Part 3: From AI Assistants to Self-Driving Architectures
15
Other Books You May Enjoy
16
Index

4

ACME Financial Services: Implementing AIOps

Now that we have covered some of the basics, we will look at applying some of those concepts through the workings of a fictitious company that has run into problems with their current observability practices after completing their migration to the cloud. This company is a large organization that works in several business markets, some of which are highly regulated. The complexity of the company, the regulations, and the company's observability problems help highlight the concepts discussed thus far that we will apply to a business use case. We will discuss the current problems, how the company comes to discover their root causes, how they find solutions and apply them, and the benefits they see from those changes.

In this chapter, we will cover the following:

  • What is ACME Financial Services?
  • The challenges of implementing enterprise-wide observability
  • Automating incident response through AIOps
  • Identifying and measuring the results
...
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Observability in the AI-Native Era
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