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Data Science Model Deployments and Cloud Computing on GCP · LearnSpace
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Data Science Model Deployments and Cloud Computing on GCP

Курс от Packt
Средний≈ 12.6 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

This course features Coursera Coach! A smarter way to learn with interactive, real-time conversations that help you test your knowledge, challenge assumptions, and deepen your understanding as you progress through the course. In this course, you'll gain hands-on experience with deploying data science models on Google Cloud Platform (GCP) while mastering cloud computing concepts. By the end, you will understand essential cloud tools like Google App Engine, Cloud Functions, and Cloud Run, and you’ll be able to efficiently deploy machine learning models into production environments. You'll also explore how cloud scalability, serverless computing, and containerization impact model deployment, ensuring you can deploy models in various environments seamlessly. You will start by exploring key cloud concepts such as scalability and serverless computing, followed by practical exercises using GCP tools. You'll walk through deploying Python applications, using Docker containers, and setting up continuous deployment pipelines with Cloud Build and GitHub. The course will introduce you to machine learning model lifecycle management and how to use GCP's Vertex AI and Kubeflow for model training and deployment. This course is perfect for data scientists, developers, and cloud enthusiasts looking to apply machine learning models in real-world applications. No advanced cloud experience is required, though basic Python and machine learning knowledge will be beneficial. The course has a hands-on, practical approach to GCP, ensuring you can deploy data science models confidently.

Навыки, которые вы освоите

Google App EngineCloud DeploymentApplication Performance ManagementDocker (Software)Model TrainingModel DeploymentContinuous DeploymentSite Reliability EngineeringCI/CDContinuous Integration

Программа курса

10 модулей · 99 учебных материалов

01Course Introduction and Prerequisites3 материалов

Course Introduction and Prerequisites

Course Introduction and Section WalkthroughВидеоFull Course ResourcesЧтениеCourse PrerequisitesВидео
02Modern-Day Cloud Concepts7 материалов

Modern-Day Cloud Concepts

Учитесь у экспертов

Packt - Course Instructors

Преподаватель курса

Data Science Model Deployments and Cloud Computing on GCP
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Обучение на Coursera

≈ 12.6 ч

10 модулей

Язык: Английский

Субтитры: Венгерский, Казахский

Часть программы вашего университета
IntroductionВидео
Scalability - Horizontal Versus Vertical ScalingВидео
Serverless Versus Servers and ContainerizationВидео
Microservice ArchitectureВидео
Event-Driven ArchitectureВидео
Scalability in Cloud ArchitecturesDIALOGUE
Modern-Day Cloud Concepts - AssessmentЗадание
03Get Started with Google Cloud6 материалов

Get Started with Google Cloud

Set Up GCP Trial AccountВидеоGoogle Cloud CLI SetupВидеоGet Comfortable with Basics of gcloud CLIВидеоgsutil and Bash Command BasicsВидеоCreating a Google Cloud Account and Using GCloud CLIDIALOGUEGet Started with Google Cloud - AssessmentЗадание
04Cloud Run - Serverless and Containerized Applications13 материалов

Cloud Run - Serverless and Containerized Applications

Section IntroductionВидеоIntroduction to DockersВидеоLab - Install Docker EngineВидеоLab - Run Docker LocallyВидеоLab - Run and Ship Applications Using the Container RegistryВидеоIntroduction to Cloud RunВидеоLab - Deploy Python Application to Cloud RunВидеоCloud Run Application Scalability ParametersВидеоIntroduction to Cloud BuildВидеоLab - Python Application Deployment Using Cloud BuildВидеоLab - Continuous Deployment Using Cloud Build and GitHubВидеоDeploying Applications with Docker and Cloud RunDIALOGUECloud Run - Serverless and Containerized Applications - AssessmentЗадание
05Google App Engine - For Serverless Applications14 материалов

Google App Engine - For Serverless Applications

Introduction to App EngineВидеоApp Engine - Different EnvironmentsВидеоLab - Deploy Python Application to App Engine - Part 1ВидеоLab - Deploy Python Application to App Engine - Part 2ВидеоLab - Traffic Splitting in App EngineВидеоLab - Deploy Python - BigQuery ApplicationВидеоCaching and Its Use CasesВидеоLab - Implement Caching Mechanism in Python Application - Part 1ВидеоLab - Implement Caching Mechanism in Python Application - Part 2ВидеоLab - Assignment Implement CachingВидеоLab - Python App Deployment in a Flexible EnvironmentВидеоLab - Scalability and Instance Types in App EngineВидеоDeploying and Managing Applications on Google App EngineDIALOGUEGoogle App Engine - For Serverless Applications - AssessmentЗадание
06Cloud Functions - Serverless and Event-Driven Applications10 материалов

Cloud Functions - Serverless and Event-Driven Applications

IntroductionВидеоLab - Deploy Python Application Using Cloud Storage TriggersВидеоLab - Deploy Python Application Using Pub/Sub TriggersВидеоLab - Deploy Python Application Using HTTP TriggersВидеоIntroduction to Cloud DatastoreВидеоOverview Product Wishlist Use CaseВидеоLab - Use Case Deployment - Part-1ВидеоLab - Use Case Deployment - Part-2ВидеоUnderstanding Google Cloud FunctionsDIALOGUECloud Functions - Serverless and Event-Driven Applications - AssessmentЗадание
07Data Science Models with Google App Engine10 материалов

Data Science Models with Google App Engine

Introduction to ML Model LifecycleВидеоOverview - Problem StatementВидеоLab - Deploy Training Code to App EngineВидеоLab - Deploy Model Serving Code to App EngineВидеоOverview - New Use CaseВидеоLab - Data Validation Using App EngineВидеоLab - Workflow Template IntroductionВидеоLab - Final Solution Deployment Using Workflow and App EngineВидеоDeploying Machine Learning Models with Google App EngineDIALOGUEData Science Models with Google App Engine - AssessmentЗадание
08Dataproc Serverless PySpark10 материалов

Dataproc Serverless PySpark

IntroductionВидеоPySpark Serverless Autoscaling PropertiesВидеоPersistent History ClusterВидеоLab - Develop and Submit PySpark JobВидеоLab - Monitoring and Spark UIВидеоIntroduction to AirflowВидеоLab - Airflow with Serverless PySparkВидеоWrap UpВидеоRunning Spark Jobs with Google Cloud DataprocDIALOGUEDataproc Serverless PySpark - AssessmentЗадание
09Vertex AI - Machine Learning Framework18 материалов

Vertex AI - Machine Learning Framework

IntroductionВидеоOverview - Vertex AI UIВидеоLab - Custom Model Training Using Web ConsoleВидеоLab - Custom Model Training Using SDK and Model RegistriesВидеоLab - Model Endpoint DeploymentВидеоLab - Model Training Flow Using Python SDKВидеоLab - Model Deployment Flow Using Python SDKВидеоLab - Model Serving Using Endpoint with Python SDKВидеоIntroduction to KubeflowВидеоLab - Code Walkthrough Using Kubeflow and PythonВидеоLab - Pipeline Execution in KubeflowВидеоLab - Final Pipeline Visualization Using Vertex UI and WalkthroughВидеоLab - Add Model Evaluation Step in Kubeflow before DeploymentВидеоLab - Reusing Configuration Files for Pipeline Execution and TrainingВидеоLab - Assignment Use Case - Fetch Data from BigQueryВидеоWrap UpВидеоUsing Vertex AI for Machine Learning PipelinesDIALOGUEVertex AI - Machine Learning Framework - AssessmentЗадание
10Cloud Scheduler and Application Monitoring8 материалов

Cloud Scheduler and Application Monitoring

Introduction to Cloud SchedulerВидеоLab - Cloud Scheduler in ActionВидеоLab - Set Up Alerting for Google App Engine ApplicationsВидеоLab - Set Up Alerting for Cloud-Run ApplicationsВидеоLab Assignment - Set Up Alerting for Cloud Function ApplicationsВидеоCloud Scheduler and Application Monitoring - AssessmentЗаданиеFull Course Practice AssessmentЗаданиеFull Course AssessmentЗадание