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Deploying and Maintaining Production AI Systems · LearnSpace
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Deploying and Maintaining Production AI Systems

Курс от Coursera
Средний≈ 14.9 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Most machine learning models fail in production not due to poor algorithms, but from inadequate deployment practices, unmonitored performance drift, and missing operational safeguards. This course equips you with the MLOps and site reliability engineering skills to deploy generative AI systems safely, automate model lifecycle management, and maintain peak performance in production environments. You will learn to orchestrate deployment workflows with canary releases and automated rollbacks, implement CI/CD pipelines with compliance checks and drift-triggered retraining, and design observability systems using logs, metrics, and tracing. Through hands-on projects, you will create performance dashboards that connect user experience with operational KPIs and build automation pipelines that improve reliability without sacrificing speed. These practical skills prepare you for roles as MLOps engineers, AI deployment specialists, and site reliability engineers. By the end of this course, you will be able to make data-driven release decisions, reduce downtime through proactive monitoring, and implement robust operational practices for AI systems at scale.

Навыки, которые вы освоите

Application DeploymentModel DeploymentDependency AnalysisRelease ManagementMLOps (Machine Learning Operations)Dashboard CreationAutomationCloud PlatformsCI/CDResponsible AIModel TrainingSite Reliability EngineeringContinuous DeploymentApplication Performance ManagementDashboardData-Driven Decision-MakingPerformance AnalysisContinuous MonitoringGenerative AIKubernetes

Программа курса

13 модулей · 88 учебных материалов

01Preventing Deployment Failures Through Dependency Analysis6 материалов
Why Dependency Analysis Saves Production DeploymentsВидеоUnderstanding Container Dependencies and Version ConflictsВидеоSystematic Approach to Container Dependency ValidationЧтениеAnalyzing Dockerfiles and SBOM Reports for Dependency ConflictsВидео

Учитесь у экспертов

Professionals from the Industry

Преподаватель курса

Deploying and Maintaining Production AI Systems
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Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 14.9 ч

13 модулей

Язык: Английский

Субтитры: Арабский, Французский, Итальянский, Бразильский португальский, Корейский, Пушту, Испанский, Дари, Японский

Часть программы вашего университета
Diagnosing Dependency Conflicts in Your Container ConfigurationDIALOGUE
Dependency Analysis Knowledge CheckЗадание
02Optimizing Deployment Through Performance Analysis7 материалов
Why Deployment Target Selection Determines AI System SuccessВидеоPerformance Metrics and Cost Analysis for Deployment TargetsВидео Systematic Benchmarking and Cost Analysis for AI Deployment TargetsЧтение Benchmarking AI Models Across Deployment TargetsВидеоValidating Your Benchmarking Framework and Interpreting Performance Trade-offsDIALOGUEPerformance Benchmark Dashboard CreationЗаданиеPerformance Analysis and Deployment Target SelectionЗадание
03Implementing Zero-Downtime Deployment Strategies7 материалов
Why Zero-Downtime Deployments Are Non-Negotiable for Production AIВидеоBlue-Green Deployment Architecture and Coordination ProtocolsВидеоImplementing Blue-Green Deployments with KubernetesЧтениеDeploying ML Models with Blue-Green Strategy in KubernetesВидеоBlue-Green Deployment Strategy DesignЗаданиеBlue-Green Deployment Strategy Knowledge CheckЗаданиеComprehensive Deployment Strategy EvaluationЗадание
04Deployment Manifest Analysis - Foundation7 материалов
Why Deployment Compatibility Analysis Prevents Production DisastersВидеоDeployment Manifest FundamentalsЧтениеDependency Resolution and Compatibility MatricesВидеоInspecting a GenAI Deployment Manifest: Step-by-Step Compatibility AnalysisВидеоValidating Your Manifest Inspection Process and Resolving Compatibility ConflictsDIALOGUEEnterprise GenAI Deployment Pipeline CreationЗаданиеManifest Analysis Fundamentals AssessmentЗадание
05Release Readiness Evaluation - Core Application6 материалов
Why Data-Driven Release Decisions Prevent Revenue LossВидеоData-Driven Release Evaluation: Frameworks for Go/No-Go DecisionsЧтениеReading the Signs: Interpreting GenAI Performance Dashboards for Release DecisionsВидеоGo/No-Go Decision Analysis: Step-by-Step Dashboard Evaluation ProcessВидеоGo/No-Go Decision Workshop: Interactive Release EvaluationDIALOGUEData-Driven Release Decision FundamentalsЗадание
06Orchestrated Workflow Creation - Integration & Assessment7 материалов
Why Orchestrated Deployment Workflows Prevent Million-Dollar FailuresВидеоBuilding Robust Deployment Pipelines: Jenkins Architecture for GenAI SystemsЧтениеImplementing Safe Deployments: Canary Patterns and Progressive Delivery for GenAIВидеоBuilding a Complete GenAI Deployment Pipeline: From Code to ProductionВидеоEnterprise GenAI Deployment Pipeline CreationЗаданиеDeployment Pipeline and Canary Release Mastery AssessmentЗаданиеComplete Release Engineering EvaluationЗадание
07Analyze Pipeline Performance Bottlenecks6 материалов
Why Performance Diagnosis Separates Reliable from Fragile MLOpsВидеоMLflow Pipeline Logging Architecture and Performance IndicatorsЧтениеNavigating MLflow Logs to Identify Performance PatternsВидеоSystematic Spark Stage Analysis for Bottleneck DetectionВидеоDiagnose Production Pipeline Performance IssuesЗаданиеPractice Quiz MLflow Performance Analysis Knowledge CheckЗадание
08Evaluate CI/CD Compliance and Rollback Safety6 материалов
Why AI Governance Compliance Separates Sustainable from Fragile MLOpsВидеоResponsible AI Governance Frameworks and CI/CD Integration PrinciplesВидеоSystematic GitHub Actions Workflow Evaluation for AI Governance ComplianceВидеоEvaluating CI/CD Governance Through Case Study AnalysisDIALOGUEAudit CI/CD Workflows Against AI Governance StandardsЗаданиеCI/CD Governance Evaluation Knowledge CheckЗадание
09Create Automated Retraining Pipelines8 материалов
Why Intelligent Automation Separates Adaptive from Fragile ML SystemsВидеоData Drift Detection Methods and Automated Trigger ArchitectureВидеоVideo: Data Drift Detection Methods and Automated Trigger ArchitectureЧтениеDesigning Drift Threshold Strategies Through Case AnalysisDIALOGUEBuilding Production-Ready PSI Drift Detection SystemsВидеоArchitect End-to-End Automated Retraining SystemЗаданиеAutomated Retraining Pipelines Knowledge Check ЗаданиеMLOps Automation Mastery AssessmentЗадание
10Alert Threshold Optimization6 материалов
The Cost of Alert Fatigue in GenAI OperationsВидеоAlert Threshold Evaluation FundamentalsВидеоAlert Sensitivity Analysis TechniquesЧтениеAnalyzing Historical Alert Data for Threshold OptimizationВидеоAlert Threshold Decision FrameworkDIALOGUEAlert Optimization Concepts AssessmentЗадание
11Performance Dashboard Creation7 материалов
Executive Dashboard Success StoriesВидеоPerformance Correlation PrinciplesЧтениеDashboard Design for GenAI SystemsВидеоKPI Integration StrategiesЧтениеBuilding OpenTelemetry DashboardsВидеоDashboard Design ChallengeЗаданиеPerformance Monitoring Concepts AssessmentЗадание
12System Observability Assessment8 материалов
Three Pillars Success StoryВидеоObservability FundamentalsВидеоLogs, Metrics, and Traces IntegrationЧтениеDistributed Trace analysis for GenAI system troubleshootingВидео Integrated Observability Decision FrameworkDIALOGUESystem Health AssessmentЗаданиеObservability AssessmentЗаданиеfrom outlineЗадание
13Project: Deploying and Maintaining Production AI Systems7 материалов
Module OverviewЧтениеProfessional ContextЧтениеPractical Applications: AI Deployment and OperationsЧтениеAI Deployment and OperationsВидеоAssignment: Production AI System DeploymentЧтениеGraded Quiz: Deploying and Maintaining Production AI SystemsЗаданиеSolution KeyЧтение