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Architect Resilient Microservices for AI Success · LearnSpace
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courseraIT и технологии

Architect Resilient Microservices for AI Success

Курс от Coursera
Средний≈ 2.7 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

A single authentication service hiccup lasting 30 seconds cascaded through an entire AI platform for three hours, costing millions in revenue—all because engineering teams hadn't mapped their service dependencies or implemented systematic resilience practices. This Short Course was created to help ML and AI professionals architect resilient distributed systems that power AI systems at scale. By completing this course you'll be able to proactively identify cascading failure risks, leverage RED metrics to prioritize system optimizations, and create standardized templates that accelerate development while ensuring operational consistency. By the end of this course, you will be able to: • Analyze service dependencies to identify potential cascading failure risks • Evaluate observability metrics to prioritize system optimizations • Create a microservice template with standardized logging, tracing, and security middleware This course is unique because it transforms reactive engineering teams into proactive ones by combining systematic dependency analysis, data-driven optimization, and standardized development frameworks into anti-fragile systems that improve under stress. To be successful, you should have basic understanding of distributed systems, microservices concepts, system monitoring tools, and software engineering principles.

Навыки, которые вы освоите

MiddlewareMicroservicesAuthenticationsPerformance TuningDistributed ComputingFailure Mode And Effects AnalysisPerformance MetricApplication Performance ManagementService LevelRisk Management FrameworkAI EnablementContinuous MonitoringPerformance AnalysisSystem MonitoringFailure AnalysisSite Reliability EngineeringDependency Analysis

Программа курса

3 модулей · 20 учебных материалов

01Module 1: Service Dependency Risk Analysis5 материалов
When AI Systems Fail: The Hidden CascadeВидеоMapping Service Dependencies for Failure AnalysisВидеоDependency Analysis Frameworks for Distributed AI SystemsЧтениеAnalyzing Real-World Dependency Failure ScenariosDIALOGUE

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Professionals in the Industry

Преподаватель курса

Architect Resilient Microservices for AI Success
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Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 2.7 ч

3 модулей

Язык: Английский

Субтитры: Арабский, Французский, Итальянский, Корейский, Пушту, Индонезийский, Испанский, Дари, Японский

Часть программы вашего университета
Dependency Analysis Knowledge CheckЗадание
02Module 2: Observability Metrics Optimization8 материалов
Data-Driven Decisions That Save SystemsВидеоRED Metrics Framework for AI System Performance AnalysisЧтениеPerformance Tuning Strategies for AI System BottlenecksВидеоSystem Monitoring Strategies for Proactive Performance ManagementЧтениеBuilding Performance Analysis Dashboards for RED MetricsВидеоOptimizing Performance Through Strategic RED Metrics AnalysisDIALOGUERED Metrics Analysis for System OptimizationЗаданиеObservability Metrics EvaluationЗадание
03Module 3: Standardized Template Development7 материалов
Template-Driven Development at ScaleВидеоMicroservice Template Architecture for Operational ConsistencyЧтениеImplementing Middleware Integration in Microservice TemplatesВидеоBuilding Production-Ready Microservice Templates with Integrated MiddlewareВидеоDesign a Comprehensive Microservice Template for AI WorkloadsЗаданиеTemplate Development - Knowledge CheckЗаданиеComprehensive Microservice Resilience Architecture AssessmentЗадание