Posted on: 30/09/2026
Job Summary:
We are looking for an experienced Databrick Lead with strong hands-on experience in AWS, Databricks, Oracle, PySpark, ADF, DATA Quality, and PL/SQL. The candidate will be responsible for designing scalable data solutions, optimizing data pipelines, and providing technical leadership to the data engineering team.
Key Responsibilities:
- Design and develop scalable data pipelines using AWS, Databricks, ADF, and Oracle.
- Develop data processing and transformation solutions using PySpark and Spark SQL.
- Develop and optimize complex SQL and PL/SQL queries.
- Implement Databricks Lakehouse, Delta Lake, Unity Catalog, and Lakehouse Federation.
- Manage Databricks Views, permissions, privileges, and access controls.
- Implement Databricks Asset Bundles (DABs), Jobs, Workflows, and Triggers.
- Integrate Oracle data with AWS and Databricks platforms.
- Work with AWS services such as S3, Glue, Lambda, IAM, and CloudWatch.
- Perform data quality, validation, reconciliation, and performance optimization.
- Provide technical guidance, code reviews, and mentorship to the data engineering team.
Tech Stack:
- AWS, Databricks, Oracle, PySpark, PL/SQL, Unity Catalog, Lakehouse Federation, Databricks Asset Bundles, Views & Access Management.
Candidate Profile:
- 8+ years of experience in Data Engineering/Data Platforms.
- Strong hands-on experience in AWS, Databricks, Oracle, PySpark, ADF, PL/SQL, and Data quality.
- Experience with advanced Databricks capabilities and real-world implementation.
- Strong technical leadership, problem-solving, and communication skills.
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Posted in
Data Engineering
Functional Area
Data Engineering
Job Code
1676077