Jobs · Engineering · Maryland

Lead Forward Deployed Engineer, Microsoft AI & Data

Deloitte · Baltimore, MD · 3 days ago
HybridEngineering$189k–$373k/yrFull-time

About the role

Forward Deployed Engineers (FDE) at Deloitte help clients transform AI ambition into enterprise-scale impact by pairing leading-class engineering with pod-based delivery and vertical expertise.

Responsibilities

  • Serve as the senior practitioner-leader embedded directly with our most strategic clients, leading forward-deployed engineering pods that develop and deploy GenAI solutions into production.
  • Set technical direction, remove delivery blockers, and stay hands-on; designing, reviewing, and debugging systems with the team.
  • Translate engineering trade-offs into clear decisions for client leaders when needed.
  • Represent Deloitte's FDE capability in client pursuits, executive briefings, and platform partner engagements.
  • Lead FDE pods of 2-5 onshore anchored and offshore supported engineers, owning execution, resource management, escalations, and overall delivery health.
  • Define prompt engineering, tool-use patterns, and human-in-the-loop controls for GenAI solution development.
  • Ensure production-grade quality and scalability of end-to-end RAG pipeline design.
  • Manage cloud environments (AWS, Azure, and/or Google Cloud) and enforce strong data management, testing, CI/CD, logging, versioning, and documentation practices.
  • Guide data pipelines and enable clients to stay ahead with the latest advancements.

Requirements

  • Bachelor's degree (or equivalent) in Computer Science, Data Science or Engineering.
  • 7+ years of experience in software engineering, data engineering, data science, or analytics engineering.
  • 1+ years of hands-on experience building and deploying GenAI/LLM-powered solutions in client or production environments.
  • 1+ years of experience with Microsoft AI&Data including hands-on experience with Azure AI Foundry.
  • 1+ years of experience leading project workstreams/engagements and translating business problems into AI solutions.
  • 1+ years of experience building reliable, maintainable, and well-documented code.
  • Ability to travel 50% on average based on the work you do and the clients and industries/sectors you serve.

Qualifications

  • Limited immigration sponsorship may be available.
  • Experience with cloud environments (AWS, Azure, and/or Google Cloud) and common platform services (storage, compute, IAM, networking).
  • Demonstrated ability to work directly alongside client technical teams and program stakeholders in fast-paced, ambiguous delivery environments.
  • Data engineering experience with Spark, Airflow/dbt, streaming, data modeling or ML/data science background feature engineering, experimentation or model evaluation.
  • Experience with MLOps/LLMOps practices: evaluation frameworks, model monitoring, and prompt management.
  • Experience integrating LLM solutions with enterprise systems via APIs, microservices, or event-driven architectures.
  • Familiarity with security, privacy, and compliance considerations.

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