In the second course of Machine Learning Engineering for Production Specialization, you will build data pipelines by gathering, cleaning, and validating datasets and assessing data quality; implement feature engineering, transformation, and selection with TensorFlow Extended and get the most predictive power out of your data; and establish the data lifecycle by leveraging data lineage and provenance metadata tools and follow data evolution with enterprise data schemas.
This course is part of the Machine Learning Engineering for Production (MLOps) Specialization
Offered By

About this Course
• Some knowledge of AI / deep learning
• Intermediate Python skills
• Experience with any deep learning framework (PyTorch, Keras, or TensorFlow)
What you will learn
Identify responsible data collection for building a fair ML production system.
Implement feature engineering, transformation, and selection with TensorFlow Extended
Understand the data journey over a production system’s lifecycle and leverage ML metadata and enterprise schemas to address quickly evolving data.
Skills you will gain
- ML Metadata
- Convolutional Neural Network
- TensorFlow Extended (TFX)
- Data Validation
- Data transformation
• Some knowledge of AI / deep learning
• Intermediate Python skills
• Experience with any deep learning framework (PyTorch, Keras, or TensorFlow)
Offered by
Syllabus - What you will learn from this course
Week 1: Collecting, Labeling and Validating Data
Week 2: Feature Engineering, Transformation and Selection
Week 3: Data Journey and Data Storage
Week 4 (Optional): Advanced Labeling, Augmentation and Data Preprocessing
Reviews
- 5 stars60.03%
- 4 stars21.99%
- 3 stars9.63%
- 2 stars5.13%
- 1 star3.21%
TOP REVIEWS FROM MACHINE LEARNING DATA LIFECYCLE IN PRODUCTION
Very good training about data lifecycle for ML projects
Great training! Great trainer, super materials and labs.
instruction on debugging jupyter and submission issue is important for learners
Best course for the professionals looking to upgrade there ML skills at production level! Thanks to the brilliant and wonderful course instructor.
About the Machine Learning Engineering for Production (MLOps) Specialization

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