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Sr. Data Engineer
Job in
Charlotte, Mecklenburg County, North Carolina, 28245, USA
Listed on 2026-08-18
Listing for:
Motion Recruitment Partners LLC
Full Time
position Listed on 2026-08-18
Job specializations:
-
Software Development
Data Engineering
Job Description & How to Apply Below
Outstanding long-term contract opportunity! A well-known Financial Services Company is looking for a Software Engineer in Charlotte, NC (Hybrid).
Work with the brightest minds at one of the largest financial institutions in the world. This is a long-term contract opportunity that includes a competitive benefit package! Our client has been around for over 150 years and is continuously innovating in today's digital age. If you want to work for a company that is not only a household name, but also truly cares about satisfying customers' financial needs and helping people succeed financially, apply today.
Contract Duration: 12 Months
Required Skills & Experience- 4+ years of Data Engineering experience, or equivalent demonstrated through one or a combination of the following: work experience, training, military experience, education
- 4+ years PL/SQL and SQL skills with proven experience in Oracle, Teradata, Python and/or Big Query: complex query development, tuning, and debugging.
- 4+ years Ab Initio skills with proven experience to build complex graphs, Psets, performance tuning.
- 3+ years programming skills in Python; hands-on PySpark for distributed data processing
- 3+ years of ETL/ETL design, data warehousing concepts, and data modeling best practices
- Production operations experience: monitoring, SLAs, incident response, root cause analysis, and performance optimization.
- Experience working in hybrid environments (on-prem + cloud) and supporting data migration/modernization initiatives.
- Experience with scheduling/orchestration in Autosys and Airflow-based orchestration (Cloud Composer direction).
- Experience with Git-based workflows, code reviews, and automated testing practices for data pipelines.
- Experience with Harness, Jenkins and uDeploy based CICD environments.
- Practical experience using AI-assisted coding tools in daily development to improve productivity without compromising quality or security.
- Ab Initio development/maintenance experience and/or hands-on migration of Ab Initio graphs to modern Spark/SQL patterns.
- Experience with Dataplex and broader data governance concepts (metadata, classification, stewardship, lineage practices).
- Experience with Informatica Data Quality implementation patterns (profiling, rules, scorecards/metrics, exception workflows).
- Experience designing near real-time patterns (micro-batch/event-driven concepts) and handling late-arriving/out-of-order data.
- Familiarity with GCP operational practices for data workloads (service accounts/IAM basics, job monitoring, quota/cost controls).
- Build and maintain scalable batch and near real-time data pipelines usingAB Initio,Python,?
PySpark, PL / SQL and SQL to ingest, transform, and publish curated datasets across on-prem and Google Cloud platforms. - Develop and optimize
BigQuerytransformations and data models, including partitioning, clustering, query optimization, and cost/performance tuning. - Supportmodernization/migration from Teradata and Ab Initio workflows to GCP/Big Query, including logic re-platforming, reconciliation, parallel runs, and controlled cutovers.
- Implement orchestration and scheduling for pipelines using legacy Autosys while driving migration toward Google Cloud Composer (Airflow), including dependency management, retries, SLAs, and backfills.
- Apply data governance and discovery practices using
Dataplex: metadata management, dataset organization, classification support, and ensuring data is consumption-ready. - Build and operationalize data quality controls using Informatica Data Quality: profiling, rule implementation, thresholds, exception handling, and embedding quality gates into pipelines.
- Ensure operational excellence: monitoring, alerting, runbooks, incident triage/root cause analysis, and continuous improvements to reliability and performance.
- Implement secure data engineering practices: least-privilege access, PII handling/masking where required, retention controls, and audit-friendly documentation.
- Partner with product, analytics, and engineering stakeholders to translate requirements into clear data contracts, curated datasets, and maintainable documentation (data dictionaries, reconciliation notes, operational runbooks).
- Must-have:
Use AI-assisted coding tools (e.g., Git Hub Copilot, Devin, or similar) to accelerate development while maintaining strong code review discipline, testing, and secure coding standards. - Closely partner with Product Owners, Architects and Engineers on definition, design, development, integration, testing and support of reliable and reusable Data pipelines.
- Analyze highly complex business requirements; generate technical specifications to design ETL processes.
- Act as an expert technical resource for analysis and provides critical direction to less experienced staff. Work with team members to provide insight into solving complex problems with middlewarewhile leveraging enterprise and industry best practices (including scalability, availability, maintainability, and…
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