Kód: 53775584
Automation is everywhere. Control is not.Modern teams can build, deploy, scale, monitor, and remediate software faster than ever. But automation alone does not guarantee a healthy production system. An autoscaler can worsen a data ... celý popis
Angličtina
17.44 €
Bežne: 18.76 €
Ušetríte 1.31 €

Nákupom získate 42 bodov
Anotácia knihy
Automation is everywhere. Control is not.
Modern teams can build, deploy, scale, monitor, and remediate software faster than ever. But automation alone does not guarantee a healthy production system. An autoscaler can worsen a database bottleneck. A remediation workflow can execute the wrong recovery perfectly. AI agents for DevOps can diagnose an incident correctly-and still be too dangerous to trust with unrestricted production access.
If you work with CI/CD, Kubernetes reliability, observability, SLOs, SRE automation, platform engineering, or DevSecOps automation, you face a growing challenge: these systems increasingly make decisions and change production, yet they are often engineered as separate mechanisms with overlapping objectives and authority.
DevOps as a Control System provides a practical production systems engineering framework for bringing them together. You will learn to design production as interconnected feedback loops where telemetry reveals behavior, SLOs define acceptable outcomes, policies constrain decisions, automation acts, and verification determines what happens next.
Inside, you will learn how to:
Model DevOps as a closed-loop control system using feedback, state, stability, delay, gain, hysteresis, damping, and convergence.
Engineer actionable observability with metrics, logs, traces, events, RED, USE, Golden Signals, and business telemetry.
Use SLIs, SLOs, error budgets, and burn rates to control reliability and deployment risk.
Build feedback-controlled CI/CD and progressive delivery with quality gates, canary releases, production verification, and automated rollback.
Apply DevSecOps automation and policy as code to software supply chains, runtime security, governance, and least privilege.
Engineer platform engineering and Kubernetes reliability through reconciliation, GitOps, autoscaling, scheduling, and capacity control.
Design automated incident remediation and self-healing systems with bounded actions, retries, circuit breakers, verification, rollback, and escalation.
Apply AIOps engineering to anomaly detection, event correlation, root-cause analysis, forecasting, and predictive reliability.
Engineer AI agents for DevOps and SRE with production context, scoped tools, machine identity, runtime authorization, evaluation, and human oversight.
Design autonomous production systems that coordinate multiple controllers while controlling uncertainty, blast radius, authority, and human intervention.
A single evolving cloud-native commerce platform connects these concepts, showing how a conventional CI/CD and Kubernetes environment can mature into an observable, secure, resilient, self-healing, intelligent, and governed production system.
Whether you are a DevOps engineer, SRE, DevSecOps engineer, platform engineer, cloud engineer, software engineer, AI engineer, or architect, this book will help you move beyond:
"How do I automate this?"
to the more important question:
"How do I build a production system that knows when to act, whether its action worked, and when control must return to a human?"
Move beyond automated pipelines. Get DevOps as a Control System and start engineering production systems built for secure, resilient, and governed autonomy.
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17.44 €
AngličtinaOsobný odber Bratislava a 13358 dalších
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