MLOps Foundations: Deploying and Scaling Machine Learning Pipelines
Learn to automate, containerize, and monitor machine learning models in production using Docker, Kubernetes, and modern CI/CD workflows.
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このコースについて
Moving a machine learning model from a local notebook to a reliable production environment is one of the biggest challenges in modern software engineering. This course teaches you how to bridge the gap between data science experimentation and robust operational engineering.
Through clear, step-by-step written explanations and hands-on configuration exercises, you will develop the skills to build, deploy, and maintain scalable machine learning pipelines. You will transition from writing isolated training scripts to designing resilient systems that automatically test, deploy, and monitor models in real-world environments.
What you'll learn:
- Understand the core differences between traditional DevOps and the MLOps lifecycle.
- Containerize machine learning applications using Docker for consistent environment deployment.
- Configure automated CI/CD pipelines to validate and deploy model updates seamlessly.
- Monitor production models for performance degradation, data drift, and system health.
- Orchestrate scalable ML workloads using Kubernetes and cloud infrastructure.
- Apply modern LLMOps concepts to manage and operationalize large language model workflows.
The curriculum guides you systematically from local model packaging to cloud-scale orchestration. You will study practical configurations, analyze deployment patterns, and write automation scripts to ensure real-world reliability.
This course is designed for aspiring ML engineers, data scientists, and software developers who are new to operational workflows. No prior DevOps experience is required, as we begin with foundational terminology and basic concepts before advancing to deployment architectures.
Start building reliable, automated machine learning pipelines today.
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♾️無期限アクセス いつでも再開可能、有効期限なし
📱スマホでもPCでも どこでもどんな端末でも
💸14日返金保証 理由を聞きません
⚡短く要点だけ 2時間48分の実践的な内容
レビュー (6)
Alejandro Torres
AR認証済み受講者
★ 4 · 05.07.2026
このコースは期待以上でした。紹介されている実用的な応用例が非常に役立ちます。素晴らしい出来です!
عائشة بنت سالم
BH認証済み受講者
★ 5 · 23.06.2026
このコースを受講して本当に良かったです。実践的な応用例がとても役立ち、全体的な構成も最高でした。
غسان بن سعيد
TN
★ 4 · 14.06.2026
Loved the practical application examples. Exactly the kind of hands-on learning I was looking for.
Oscar Thomas
AU認証済み受講者
★ 5 · 11.06.2026
A good introduction. The structure was mostly clear, but I wish there were a few more real-world examples. Still, learned a lot.