Principal Data Engineer

Infosys
Charlotte, NC, United States
7 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Working hours
Regular working hours
Job source

Tech stack

Application Programming Interfaces (APIs) Amazon Web Services Amazon S3 Business Analytics Applications Application Integration Architecture Cloud Computing Cloud Database Information Engineering Data Infrastructure Data Integration Extract Transform Load (ETL) Data Transformation
+25 more
Data Systems Data Vault Modeling Data Warehousing Database Development IBM InfoSphere DataStage DevOps Amazon DynamoDB Python (Programming Language) Meta-Data Management NoSQL Performance Tuning Software Tools SQL Databases Enterprise Data Management Data Processing Snowflake Git Data Lakes Data Lineage Qlikview Non-relational Database Data Management Database Replication Functional Programming Data Pipelines

Job description

Applicants must be authorized to work for ANY employer in the U.S. We are unable to sponsor or take over sponsorship of an employment Visa at this time., We are seeking an experienced Principal Data Engineer to design, develop, and maintain scalable data solutions supporting enterprise data engineering and analytics initiatives. This role will work across data engineering, data warehousing, data integration, and cloud technologies to build reliable and high-performing data platforms., * Design, develop, and optimize scalable data pipelines and data integration solutions.

  • Develop and maintain data architectures supporting enterprise data warehouses, data lakes, and analytics platforms.
  • Build and optimize ETL/ELT processes using modern data engineering tools and technologies.
  • Develop solutions using AWS services including S3, Lambda, and DynamoDB.
  • Design and implement data solutions within Snowflake and other cloud-based data environments.
  • Develop and maintain data models, including Data Vault modeling methodologies.
  • Write and optimize complex SQL and Python code for data processing and integration.
  • Work with dbt to develop, transform, test, and manage data workflows.
  • Support data replication and integration using tools such as Qlik Replicate.
  • Work with enterprise data platforms including IBM InfoSphere DataStage and CP4D.
  • Develop and integrate APIs to support enterprise data and application needs.
  • Establish and maintain data quality, governance, metadata management, and data lineage processes.
  • Collaborate with engineering, architecture, analytics, and business teams to translate requirements into scalable data solutions.
  • Troubleshoot performance, data quality, and integration issues across complex data environments.
  • Provide technical leadership and guidance on data engineering architecture and best practices.

Requirements

The ideal candidate has strong hands-on experience with AWS, Snowflake, Python, SQL, ETL/ELT, and modern data engineering practices, along with the ability to work across complex enterprise data environments., * Strong experience in data engineering and enterprise data environments.

  • Hands-on experience with AWS, particularly S3, Lambda, and/or DynamoDB.
  • Strong experience with Snowflake and cloud data warehousing.
  • Advanced Python and SQL development skills.
  • Experience developing ETL/ELT and data integration solutions.
  • Experience with data warehousing and data modeling, including Data Vault.
  • Experience with dbt or similar modern data transformation frameworks.
  • Experience with data quality, governance, metadata management, and data lineage.
  • Strong understanding of relational and non-relational databases.
  • Experience with enterprise data integration platforms and tools.
  • Ability to work independently while providing technical leadership to other engineers., * Experience with Qlik Replicate.
  • Experience with IBM InfoSphere DataStage.
  • Experience with IBM CP4D.
  • Experience developing and integrating APIs.
  • Experience with NoSQL databases.
  • Experience working with Git and DevOps practices.
  • Experience in large-scale enterprise environments.
  • Strong communication and cross-functional collaboration skills.

Work Environment

This is an onsite position that requires the ability to work from the client site on a regular basis.

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