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Data Engineer III - ETL

Be part of a dynamic team where your distinctive skills will contribute to a winning culture and team.

As a Data Engineer III at JPMorganChase within the Corporate Technology , you serve as a seasoned member of an agile team to design and deliver trusted data collection, storage, access, and analytics solutions in a secure, stable, and scalable way.

You are responsible for developing, testing, and maintaining critical data pipelines and architectures across multiple technical areas within various business functions in support of the firm's business objectives.

Job responsibilities



* Supports review of controls to ensure sufficient protection of enterprise data


* Uses enterprise-authorized AI capabilities within the work environment to accelerate data pipeline/design analysis and documentation, validating outputs and handling data according to sensitivity and security requirements.


* Responsible for making configuration and customization changes to generate a product at business or customer requests and advising colleagues in requests


* Updates logical or physical data models based on new use cases


* Frequently uses SQL and understands NoSQL databases and their niche in the marketplace


* Applies reuse-first, AI-assisted practices to strengthen SDLC-quality routines for data pipelines (e.g., test generation and control validation), ensuring traceability/auditability and alignment to resiliency and security expectations.

Required qualifications, capabilities, and skills



* Formal training or certification on data engineering concepts and 3+ years applied experience in data engineering, with a track record of developing and deploying business critical pipelines in production.


* Experience across the data lifecycle with hands-on experience in building and optimizing ETL/ELT pipelines (performance tuning, partitioning, file sizing, and incremental loads)


* Proficiency in SQL, including advanced techniques such as joins, analytics and window functions, and query optimization


* Experience working with Databricks Genie Spaces and ThoughtSpot integration to Databricks


* Strong Oracle experience, including DDL/DML and schema design best practices, and Oracle performance tuning (execution plans, indexes, partitioning, and statistics)


* Experience handling JSON and semi-structured data, including parsing, flattening, and schema evolution considerations


* Proficiency with Git-based workflows using Bitbucket and/or GitHub, with comfort working in IntelliJ IDEA or similar integrated development environments


* Strong problem-solving and debugging skills across ingestion, transformation, and serving layers


* Demonstrated experience using enterprise-authorized AI capabilities within the work environment to support data engineering workflows with strong validation habits and awareness of data sensitivity.


* Ability to review and validate AI-assisted outputs (e.g., query suggestion...




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