
JD:
Need experienced Senior Data Engineer (6+ years) to design and optimize scalable data solutions on Microsoft Azure. You will work with Snowflake for data warehousing and Databricks for big data processing within a Lakehouse architecture using medallion principles (Bronze, Silver, Gold).
JD:
Need experienced Senior Data Engineer (6+ years) to design and optimize scalable data solutions on Microsoft Azure. You will work with Snowflake for data warehousing and Databricks for big data processing within a Lakehouse architecture using medallion principles (Bronze, Silver, Gold).
Data Pipelines: Build and optimize ETL/ELT pipelines using Azure Data Factory, Databricks (PySpark, SQL), and ingest data from diverse sources into ADLS and Snowflake.
Databricks Development: Create and tune Spark jobs, leverage Delta Lake, Autoloader, and advanced optimization techniques.
Data Warehousing: Design and manage Snowflake schemas, queries, and performance tuning.
Data Quality & Governance: Implement security, lineage, validation frameworks, and compliance policies.
Programming: Develop in Python, PySpark, Scala, and advanced SQL for data processing and automation.
Collaboration: Partner with data architects and mentor junior engineers.
DevOps: Maintain CI/CD pipelines using Azure DevOps
Databricks Development: Create and tune Spark jobs, leverage Delta Lake, Autoloader, and advanced optimization techniques.
Data Warehousing: Design and manage Snowflake schemas, queries, and performance tuning.
Data Quality & Governance: Implement security, lineage, validation frameworks, and compliance policies.
Programming: Develop in Python, PySpark, Scala, and advanced SQL for data processing and automation.
Collaboration: Partner with data architects and mentor junior engineers.
DevOps: Maintain CI/CD pipelines using Azure DevOp
JD:
Need experienced Senior Data Engineer (6+ years) to design and optimize scalable data solutions on Microsoft Azure. You will work with Snowflake for data warehousing and Databricks for big data processing within a Lakehouse architecture using medallion principles (Bronze, Silver, Gold).
Data Pipelines: Build and optimize ETL/ELT pipelines using Azure Data Factory, Databricks (PySpark, SQL), and ingest data from diverse sources into ADLS and Snowflake.
Databricks Development: Create and tune Spark jobs, leverage Delta Lake, Autoloader, and advanced optimization techniques.
Data Warehousing: Design and manage Snowflake schemas, queries, and performance tuning.
Data Quality & Governance: Implement security, lineage, validation frameworks, and compliance policies.
Programming: Develop in Python, PySpark, Scala, and advanced SQL for data processing and automation.
Collaboration: Partner with data architects and mentor junior engineers.
DevOps: Maintain CI/CD pipelines using Azure DevOps
1.Relevant certifications in Snowflake, Azure Data Factory (ADF), DataBricks are a plus.

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