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Orchestrate, Analyze, and Evaluate AI Deployments · LearnSpace
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courseraIT и технологии

Orchestrate, Analyze, and Evaluate AI Deployments

Курс от Coursera
Средний≈ 2.9 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Deploying an AI model is only the beginning—keeping it reliable, explainable, and impactful in production requires strong MLOps skills. In this course, learners apply best practices to orchestrate the deployment lifecycle using continuous integration, continuous delivery, and tools like GitLab and Kubernetes. They analyze real telemetry data to investigate error spikes, trace root causes, and resolve performance issues with monitoring platforms such as Kibana. Finally, learners evaluate whether deployed models deliver on technical and business goals, comparing KPIs like conversion lift against targets and recommending next steps. Through guided labs, case studies, and discussions, learners gain practical experience in deploying, diagnosing, and evaluating AI systems with confidence.

Навыки, которые вы освоите

CI/CDDevOpsArtificial IntelligencePerformance MeasurementApplication DeploymentContinuous MonitoringOperational AnalysisPerformance MetricApplication Performance ManagementPerformance AnalysisRoot Cause AnalysisContinuous DeliveryArtificial Intelligence and Machine Learning (AI/ML)Continuous Deployment

Программа курса

1 модулей · 17 учебных материалов

01Orchestrate, Analyze, and Evaluate AI Deployments17 материалов

Orchestrating Deployments with MLOps

Welcome to the Course & Share Deployment Goals DIALOGUEIntroduction and Why Orchestration Matters in AI Deployments ВидеоMLOps Best Practices for Deployment Lifecycles Чтение CI/CD in ActionВидео

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Orchestrate, Analyze, and Evaluate AI Deployments
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Обучение на Coursera

≈ 2.9 ч

1 модулей

Язык: Английский

Часть программы вашего университета
HOL: Managing an AI Deployment Workflow Задание

Diagnosing Issues in Production

Share Your Biggest Debugging ChallengeDIALOGUEReading Production Telemetry: Logs, Metrics, and Traces ВидеоMonitoring and Observability in AI DeploymentsЧтениеInvestigating Error Spikes in Logs ВидеоHOL: Coordinating an Incident Response with Telemetry Insights Задание

Evaluating AI in Production

Which Metrics Matter Most in Your Context?DIALOGUEWhy Success Metrics Drive Deployment Decisions ВидеоEvaluating AI Success Metrics and Post-Deployment OutcomesЧтениеEvaluating Conversion Lift vs. Targets ВидеоHOL: Capstone Project: Evaluating Model Drift and Performance RecoveryЗаданиеCongratulations and Continuous Learning JourneyВидеоPutting It All Together: AI Deployment Mastery CheckЗадание