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Data Engineer

Job in Frisco, Collin County, Texas, 75034, USA
Listing for: Cain-Watters-
Full Time position
Listed on 2026-06-17
Job specializations:
  • IT/Tech
    Data Engineering, Data Warehousing, Data Security, Data Science Manager
Salary/Wage Range or Industry Benchmark: 116000 - 135000 USD Yearly USD 116000.00 135000.00 YEAR
Job Description & How to Apply Below

Summary/Objective

Reporting to the IT Manager, Data & Analytics, the Data Engineer is responsible for designing, building, and maintaining scalable data pipelines, data platforms, and data warehouse/data lakehouse architectures that support enterprise analytics, reporting, automation, and AI-enabled solutions. This role ensures that data is accurate, reliable, well-governed, secure, and optimized for consumption across Microsoft Fabric, Power BI, generative AI, AI agents, and future technologies.

The Data Engineer will enable trusted, AI-ready data foundations and support client- and vendor-facing technology solutions that are critical to business operations, growth, and service delivery.

Essential Functions
  • Design, build, and maintain robust ETL/ELT data pipelines to ingest, process, and integrate data from multiple source systems (e.g., CRM platforms, APIs, and external data sources) into Azure and Microsoft Fabric.
  • Develop and manage the enterprise data platform, including lakehouse architecture (bronze, silver, gold layers), ensuring data is structured, scalable, and optimized for analytics.
  • Ensure the quality, integrity, and consistency of data through validation processes, monitoring, and proactive issue resolution.
  • Optimize performance and scalability of data workflows, pipelines, and storage to support efficient data processing and reporting.
  • Implement and enforce data governance, security, and compliance standards, including data lineage, access controls, and regulatory requirements.
  • Enable AI-ready and agentic enterprise capabilities by preparing governed datasets, metadata, lineage, and integration patterns that allow AI agents, automation, and decision‑support tools to operate safely and effectively.
  • Support the design, delivery, and ongoing operation of client- and vendor-facing data integrations, reporting assets, APIs, and platform services that require reliable, secure, and scalable data engineering practices.
  • Responsibilities & Duties
  • Build and maintain data pipelines using Azure Data Factory, Fabric Data Pipelines, and other integration tools.
  • Develop data transformation logic using SQL, PySpark, or similar technologies to standardize and prepare data for analytics use.
  • Design and manage lakehouse structures in Microsoft Fabric, including bronze, silver, and gold data layers.
  • Collaborate with BI developers to ensure data is modeled and structured appropriately for Power BI semantic models and reporting.
  • Monitor data pipelines and platform performance, troubleshooting failures and optimizing workloads for reliability and efficiency.
  • Implement data validation checks and reconciliation processes to ensure data accuracy and completeness.
  • Manage data storage strategies, including partitioning, indexing, and lifecycle management for performance and cost optimization.
  • Ensure secure data handling practices, including role‑based access controls, encryption, and compliance with organizational and regulatory requirements (e.g., PCI considerations).
  • Maintain documentation of data pipelines, data models, and system architecture to support transparency, governance, and knowledge sharing.
  • Partner with business stakeholders and IT teams to understand data requirements and deliver scalable data solutions.
  • Support data governance initiatives, including metadata management, lineage tracking, and data classification (e.g., integration with Purview).
  • Prepare and expose curated, governed, and well‑documented data assets for AI, generative AI, semantic search, retrieval‑augmented generation, and agent‑based enterprise workflows.
  • Partner with business, IT, and analytics stakeholders to identify where data engineering can enable agentic workflows, automation, and AI‑assisted decision‑making while maintaining appropriate human oversight and control.
  • Design, build, and support data integrations, APIs, secure data exchanges, and reporting components used in client- and vendor‑facing technology solutions.
  • Establish monitoring, observability, alerting, and support practices for AI‑enabled and externally facing data solutions to ensure reliability, traceability, performance, and timely issue resolution.
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