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Sedgwick, headquartered in Memphis, Tennessee, provides a global clientele with technology-enabled risk and benefits solutions. Distinguished as an Employer of
Senior Data Engineer – Data Science, AI
Location
Idaho + 3 moreAll locations: Idaho | Louisiana | Nebraska | Tennessee
Posted
68 days ago
Salary
0
Seniority
Senior
Job Description
Senior Data Engineer – Data Science, AI
Sedgwick
• Design and implement robust ETL/ELT pipelines to ingest data from legacy on-prem sources, AWS (S3/RDS), and Azure (Blob/SQL), centralizing it for consumption in Snowflake and AI services. • Build and maintain Feature Stores and specialized datasets optimized for machine learning, ensuring Data Scientists have immediate access to clean, versioned, and statistically valid data. • Develop the data pipelines required for Generative AI, including the automated extraction, chunking, and loading of unstructured data into vector stores across AWS and Azure. • Act as the technical lead for our Snowflake data warehouse, implementing sophisticated data modeling, Snowpipe automation, and compute optimization to support high-concurrency AI workloads. • Execute non-invasive data extraction patterns to unlock mission-critical data from decades-old on-premise systems without disrupting core business operations. • Manage complex, cross-platform data workflows using Airflow, Step Functions, or Azure Data Factory, ensuring the synchronization of data across our multi-cloud AI posture. • Partner directly with central IT, Database Administrators, and Security teams to solve connectivity hurdles (PrivateLink, IAM, firewalls) and secure 'license to operate' for new data flows. • Implement automated validation and observability layers to detect data drift and quality issues that could compromise the accuracy of production AI and Data Science models. • Drive the efficiency of our data stack by optimizing storage and query performance in Snowflake, AWS, and Azure to manage the ROI of the Transformation Office. • Work as a dedicated engineering partner to MLOps and Data Science teams to rapidly iterate on data requirements for evolving AI use cases.
Job Requirements
- Bachelor’s degree in Computer Science, Data Engineering, or a related field is required.
- A Master’s degree is highly desirable.
- 6+ years of hands-on data engineering experience, with a track record of building production-grade pipelines for Data Science and AI in multi-cloud environments.
- Expert-level proficiency in Snowflake architecture, including data sharing, performance tuning, and the integration of Snowflake with external cloud AI services.
- Advanced, hands-on knowledge of AWS (S3, Glue, Lambda) and Azure (Data Factory, Synapse) data services.
- Mastery of Python, SQL, and PySpark. Deep experience with data orchestration and containerization (Docker).
- Proven ability to interface with 'old world' tech (on-premise SQL, Mainframe extracts, flat files) and transform it for modern cloud consumption.
- A strong understanding of the specific data needs for Machine Learning (feature engineering) and Generative AI (vectorization and embedding pipelines).
- A 'get-it-done' attitude, capable of navigating enterprise bureaucracy and technical debt to ship code at the speed required by a Transformation Office.
Benefits
- Health insurance
- 401(k) matching
- Flexible work hours
- Paid time off
- Professional development opportunities
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