Efficient Data+AI Stack

Efficient Data+AI Stack

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Do you really need a Feature Store?

What constitutes an efficient development environment for data scientists?

MLOps Automation — CI/CD/CT for Machine Learning (ML) Pipelines

ML model registry — the “interface” that binds model experiments and model deployment

Why Data Scientists Should Adopt Machine Learning (ML) Pipelines

MLOps in Practice — Machine Learning (ML) model deployment patterns (Part 1)

Build low-latency and scalable ML model prediction pipelines using Spark Structured Streaming and MLflow

MLOps in Practice— Have you ever monitored your ML driven systems?

Continuously ingest and load CSV files into Delta using Spark Structure Streaming

Have You Ever “Tested” Your Data Pipelines?

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