Most machine learning practitioners know how to build models. Far fewer know how to ship them reliably, maintain them over time, and operate the systems that surround them. This program closes that gap. Gradient to Production is a comprehensive, intermediate-level program designed for data scientists, ML engineers, and analytics engineers who are ready to move beyond the notebook and into production. Across 15 focused courses, you will build the full stack of MLOps skills that modern AI teams require: designing resilient data pipelines, engineering reusable Python packages, deploying and containerizing models, serving inference APIs, testing ML systems rigorously, monitoring for drift, and documenting your work so teams can trust and build on it. You will work with tools and frameworks used across the industry, including FastAPI, Docker, Kubernetes, Apache Airflow, scikit-learn, GitHub Actions, and pytest. Every course combines concise instruction with hands-on labs, guided coaching, and realistic workflows that reflect how production ML teams actually operate. By the end of the program, you will be equipped to design, deploy, test, monitor, and maintain ML systems end-to-end — with the engineering discipline, operational judgment, and communication skills that distinguish practitioners who experiment from engineers who deliver.
CERTIFICATEKatılım Sertifikası
FORMAT100% Online
DURATION1 ay
What you'll learn
Git (Version Control System)
Package and Software Management
Virtual Environment
Jupyter
Resource Utilization
Memory Management
Version Control
AI Workflows
Model Training
Software Configuration Management
Unit Testing
Code Reusability
Course Content
15 topics
Kurs 1Optimize ML Dev: Version, Reproduce, and Save
Kurs 2Build Testable Python Packages for AI
Kurs 3Debug ML Code: Fix, Trace & Evaluate
Kurs 4Engineer, Validate, and Govern ML Data
Kurs 5Orchestrate, Analyze, and Evaluate ML Pipelines
Kurs 6Automate ML Pipelines for Peak Performance
Kurs 7Evaluate, Analyze, and Model Performance
Kurs 8Develop Production-Ready ML APIs with MLOps
Kurs 9Deploy & Optimize ML Services Confidently
Kurs 10Deploy, Manage, and Orchestrate Your Models
Kurs 11Automate and Evaluate ML Pipeline Tests
Kurs 12Deconstruct AI: Complex ML Problems
Kurs 13Validate, Analyze, and Monitor ML Models
Kurs 14Integrate, Scale, and Monitor ML Microservices
Kurs 15Document AI: Project & API Writing
Details
ProviderCoursera
TypeCourse
CategoryData Science & AI
LevelIntermediate
Duration1 ay
LanguageEnglish
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Melis Gülsar
Hızlı desteği ve üst düzey hizmeti ile Campus Online ve Sosyal Medya Sertifika Programı hizmeti sağlayan Adnan Menderes Üniversitesine sonsuz teşekkürlerimi sunuyorum.