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Automate AI Anomaly Detection & Response · LearnSpace
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Automate AI Anomaly Detection & Response

Курс от Coursera
Средний≈ 4.8 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

An outage rarely starts with a red dashboard-it starts as a small anomaly: a spike in latency, a surge in failures, or a subtle change in traffic. The faster you detect and respond, the less damage (and stress) you create. In this course, you’ll build an end-to-end anomaly detection and response loop on Azure. You’ll instrument an app with Application Insights, detect unusual behavior with Azure Monitor smart detection, dynamic thresholds, and KQL time-series functions, and then turn alerts into action using action groups and Logic Apps (with optional Azure Functions for custom remediation). You’ll learn a practical workflow: choose the right signal, set guardrails to reduce noise, enrich alerts with context, and automate a consistent response-notify the right channel, capture evidence, and trigger a safe mitigation step. This course is designed for IT professionals, including DevOps engineers, SREs, and Azure administrators, who want to learn how to automate anomaly detection and response workflows in Azure environments. Learners should be familiar with basic Azure Portal navigation, and JSON familiarity is helpful, along with basic monitoring concepts. No ML prerequisite. By the end, you’ll have a reusable blueprint (queries, alert rules, and automation) you can adapt to real systems to catch problems earlier and respond reliably.

Навыки, которые вы освоите

Application Performance ManagementIncident ManagementAnomaly DetectionUser FeedbackData AnalysisProcess OptimizationEvent MonitoringTime Series Analysis and ForecastingGenerative AIQuery LanguagesData IntegrationMicrosoft Azure

Программа курса

3 модулей · 24 учебных материалов

01Telemetry, Baselines, and First Alerts8 материалов
When Checkout Latency SpikesDIALOGUEWelcome to the Course: Course OverviewЧтениеWelcome to Automate AI Anomaly Detection & ResponseВидеоSignals 101: Metrics, Logs, Traces, and BaselinesВидео

Учитесь у экспертов

Starweaver

Global Leaders in Professional & Technology Education

Renaldi Gondosubroto

Developer Advocate | 14x AWS Certified | PMP | CSCP

Automate AI Anomaly Detection & Response
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Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 4.8 ч

3 модулей

Язык: Английский

Часть программы вашего университета
Quick Reference: Azure Monitor Alerts & Smart DetectionЧтение
Built-in Anomaly Detection through Smart Detection and Dynamic ThresholdsВидео
Instrument an App and Create Your First AlertВидео
Hands-On-Learning: Creating an Anomaly Alert with an Action GroupВзаимная проверка
02KQL Time-Series Anomaly Detection7 материалов
Is It an Anomaly, or Just Seasonality?DIALOGUETurning Logs into a Time Series with KQLВидеоAnomaly Detection with KQL Through Series DecompositionВидеоBuilding a KQL Anomaly Query and Creating a Log Alert RuleВидеоReference: KQL Anomaly Detection & ForecastingЧтениеSuppression, Dimensions, and What to IncludeВидеоHands-On-Learning: Create a KQL-Based Anomaly Alert with Enriched ContextВзаимная проверка
03 Automate Triage and Safe Mitigation9 материалов
What Should Happen Automatically when an Alert Fires?DIALOGUEResponse Patterns: Notify, Triage, Mitigate, and LearnВидеоAction Groups to Logic Apps to Teams or TicketingВидеоReference: Common Alert Schema for AutomationЧтениеDesigning Safe Auto-Remediation Without Making it WorseВидеоHands-On-Learning: Build an Alert-Driven Response WorkflowВзаимная проверкаCourse Wrap-upВидеоProject: End-to-End Anomaly Detection & Auto-ResponseВзаимная проверкаAutomate AI Anomaly Detection & ResponseЗадание