Delve into the two different approaches to converting raw data into analytics-ready data. One approach is the Extract, Transform, Load (ETL) process. The other contrasting approach is the Extract, Load, and Transform (ELT) process. ETL processes apply to data warehouses and data marts. ELT processes apply to data lakes, where the data is transformed on demand by the requesting/calling application.

ETL and Data Pipelines with Shell, Airflow and Kafka

ETL and Data Pipelines with Shell, Airflow and Kafka
This course is part of multiple programs.



Instructors: Jeff Grossman +4 more
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What you'll learn
Describe and contrast Extract, Transform, Load (ETL) processes and Extract, Load, Transform (ELT) processes.
Explain batch vs concurrent modes of execution.
Implement ETL workflow through bash and Python functions.
Describe data pipeline components, processes, tools, and technologies.
Skills you'll gain
- Category: Data Processing
- Category: Data Transformation
- Category: Data Cleansing
- Category: Data Integration
- Category: Performance Tuning
- Category: Extract, Transform, Load
- Category: Data Mart
- Category: Data Warehousing
- Category: Data Pipelines
Tools you'll learn
- Category: Shell Script
- Category: Apache Kafka
- Category: Data Lakes
- Category: Apache Airflow
- Category: Bash (Scripting Language)
- Category: Command-Line Interface
Details to know

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Reviewed on Jan 20, 2025
Relevant information in recordings, good recap of every video and hand-on lesson in the end to concrete the knowledge.
Reviewed on Aug 27, 2024
Muy satisfecho con el contenido del curso, y los laboratorios. Thank you very much!
Reviewed on Jan 16, 2022
Love the labs, but do not like the robotic lectures.
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