Part 1 | MLOps On GitHub | Deploy and Automate ML Workflow |Using GitHub Actions and CML for CI& CD
Автор: Abonia Sojasingarayar
Загружено: 2024-11-19
Просмотров: 583
Описание:
Comprehensive tutorial on using GitHub Actions and Continuous Machine Learning (CML) to automate machine learning workflows! In this video, we’ll walk through the complete process of setting up a CI/CD pipeline for a machine learning project focused on churn prediction. By the end, you’ll be able to create and deploy automated workflows, monitor model performance, and collaborate seamlessly with your team!
By setting up CI/CD for your ML projects, you can:
Automate model training every time you make changes to your code.
Test and validate models continuously to ensure performance stays consistent.
Deploy models seamlessly, whenever they're ready.
⭐️ Contents ⭐️
0:00 Introduction to CI/CD Concepts for ML
1:00 GitHub Actions and Continuous Machine Learning (CML) workflow
05:43 GitHub Repository Setup
08:19 Dataset Preparation
10:06 Project Codebase: Building the Machine Learning Model Pipeline
39:33 Testing Churn Prediction
40:18 Next-Step
🔗 Links & Resources
Part 2 - • Part 2 | MLOps On GitHub | Deploy and Auto...
Article - / automate-ml-and-llm-workflow-with-github-a...
Code & Project Files: https://github.com/Abonia1/Github-Act...
GitHub Actions Documentation: https://docs.github.com/actions
CML Documentation: https://cml.dev/doc
Github Token to authenticate GitHub action: https://docs.github.com/en/actions/se...
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#GitHubActions, #CML, #MachineLearning, #MLOps, #DataScience, #CICD, #Automation, #MLPipeline, #AI, #Scikitpipeline, #MLModel#DataScience
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