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Machine Learning with Databricks and MLflow · LearnSpace
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Machine Learning with Databricks and MLflow

Курс от Pragmatic AI Labs
Средний≈ 3.3 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

This course teaches you to build, track, and deploy machine learning models on the Databricks platform using MLflow. You start with the reproducibility crisis in ML — understanding why untracked experiments, scattered notebooks, and missing version control create production failures — and learn how MLflow solves these problems with structured experiment tracking, model versioning, and artifact management. You then explore MLflow's architecture in depth: the Tracking layer for logging parameters, metrics, and artifacts; the Model Registry for governance and stage gates; and the Projects layer for reproducible environments. The course covers Feature Store architecture for eliminating training/serving skew, where features are computed once and served two ways — batch for training and real-time for inference. You progress through the ML algorithm spectrum from manual implementations to AutoML, learning when to choose transparency over automation for regulated industries. The second module focuses on production deployment: the MLOps maturity staircase (L0 through L3), inference patterns for batch and real-time serving, and the infrastructure decisions that separate prototype ML from production ML. Hands-on labs on Databricks reinforce every concept.

Навыки, которые вы освоите

DatabricksMLOps (Machine Learning Operations)Data ScienceScala ProgrammingData MiningStatistical InferenceMathematical ModelingArtificial IntelligenceFunctional TestingContinuous MonitoringRust (Programming Language)LLM ApplicationProgramming PrinciplesHugging FaceApache SparkExploratory Data AnalysisRecurrent Neural Networks (RNNs)Lean Six SigmaData ArchitectureModel Evaluation

Программа курса

3 модулей · 45 учебных материалов

01Databricks ML Foundations17 материалов

The Reproducibility Crisis

The Reproducibility CrisisВидеоMLflow Tracking Deep DiveВидеоRemote Experiment TrackingВидеоTracking Server ScenariosВидеоDatabricks AutologgingВидео

Учитесь у экспертов

Noah Gift

Преподаватель курса

Machine Learning with Databricks and MLflow
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Начать на Coursera

Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 3.3 ч

3 модулей

Язык: Английский

Часть программы вашего университета
DBFS to AutoMLВидео
About This CourseЧтение
Key TermsЧтение
ReflectionЧтение

Spark Clusters Demo

Spark Clusters DemoВидеоDatabricks NotebooksВидеоWorking with Data in DatabricksВидеоPySpark IntroductionВидеоKey TermsЧтениеReflectionЧтение

Critical Thinking Assessment

Databricks ML FoundationsDIALOGUEQuiz: Databricks ML FoundationsЗадание
02Production MLOps16 материалов

The MLOps Maturity Staircase

Key TermsЧтениеThe MLOps Maturity StaircaseВидеоWhy MLOpsВидеоMLOps Hierarchy of NeedsВидеоMLOps Maturity ModelВидеоReflectionЧтениеDatabricks Free EditionЧтение

Log Register Deploy Models

Key TermsЧтениеLog, Register & Deploy ModelsВидеоUnity Catalog Model RegistryВидеоModel Serving EndpointsВидеоEnd-to-End MLOps on DatabricksВидео End-to-End ML PipelineВидеоReflection

Critical Thinking Assessment

Quiz: Production MLOpsЗаданиеProduction MLOpsDIALOGUE
03 Enterprise MLOps & Sovereign AI12 материалов

Open Source MLflow

Key TermsЧтениеOpen-Source MLflowВидеоReflectionЧтение

Workspaces And Repos

Key TermsЧтениеWorkspaces and ReposВидеоReflectionЧтение

Critical Thinking Assessment

Capstone ProjectЧтениеBefore You GoЧтениеCoach: Machine Learning with Databricks and MLflowDIALOGUEFinal Graded QuizЗаданиеEnterprise MLOps & Sovereign AIDIALOGUENext StepsЧтение
Чтение