The Lead AI Enterprise Data Engineer will drive the transformation of eCommerce operational analytics and real-time monitoring by building scalable data pipelines, AI-powered insights, and intelligent dashboards. This role leads AI proof-of-concepts and contributes to production-grade solutions that improve platform reliability, accelerate root-cause identification, enhance engineering productivity, and strengthen operational intelligence across McAfee’s eCommerce ecosystem. This is a Hybrid position located in Frisco, TX. You will be required to be on-site on an as-needed basis; when you are not working on-site, you will work from your home office. You must be within commutable distance of Frisco, TX. We are not offering relocation assistance at this time. About The Role: Design operational and business metrics using transactional data, telemetry, and customer behavior data. Build near real-time dashboards for eCommerce funnel metrics, subscription flows, payments, and operational KPIs. Develop scalable data pipelines using Databricks (PySpark, Delta Lake, Workflows, Medallion Architecture). Optimize Databricks-based data lake structures for analytics across eCommerce and MarTech domains. Build automated data quality validation frameworks. Build AI models for anomaly detection, churn forecasting, and funnel drop-off prediction. Create AI-powered copilots and tools to boost engineering productivity. Integrate LLMs (OpenAI, Claude, LangChain, OSS models). Build AI agents using AWS GenAI tooling. Track AI-driven KPIs and deploy enterprise/local LLM solutions. Integrate AI systems with eCommerce platform APIs, telemetry, and Databricks workflows. Build orchestration layers for automated decision-making. Architect scalable data + AI solutions using Databricks + AWS. Implement CI/CD for AI/ML workflows. Build cost optimization and AI usage governance tooling. Automate incident intelligence and reporting.
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Job Type
Full-time
Career Level
Mid Level
Education Level
No Education Listed