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Data Scientist​/ML Engineer Gen AI

Job in McLean, Fairfax County, Virginia, USA
Listing for: Freddie Mac
Full Time position
Listed on 2026-02-06
Job specializations:
  • IT/Tech
    AI Engineer, Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 144000 - 216000 USD Yearly USD 144000.00 216000.00 YEAR
Job Description & How to Apply Below
Position: Data Scientist / ML Engineer Gen AI

Position Overview

Freddie Mac is seeking a hands‑on Data Scientist / ML Engineer to lead the design, development, and deployment of innovative AI/ML, Generative AI (GenAI), and Agentic AI solutions for Enterprise Risk organization. This role requires advanced proficiency in data science, data engineering, and expertise in LLMs/GenAI to build scalable, production‑ready systems that drive business impact. You will work across the entire AI lifecycle, from data collection and model experimentation to production deployment and monitoring, collaborating with cross‑functional teams to deliver enterprise‑grade AI solutions.

Key Responsibilities
  • End‑to‑End AI/ML Solution Delivery
    :
    Own the full lifecycle of AI/ML projects, including problem framing, data acquisition, feature engineering, model/LLM selection and fine‑tuning, evaluation, deployment, monitoring, and continuous improvement.
  • Data Engineering and Pipelines
    :
    Design, build, and maintain robust, scalable data pipelines for ingestion, preprocessing, and feature engineering, supporting both structured and unstructured enterprise data.
  • LLM/GenAI & Agentic AI
    :
    Implement RAG pipelines using vector databases and embedding strategies to ground LLMs in proprietary enterprise data; fine‑tune, prompt‑engineer, and evaluate LLMs for domain‑specific tasks; design and orchestrate Agentic workflows including tool‑using agents, multi‑step planners, guardrails, and alignment mechanisms.
  • Trustworthy AI & Risk Controls
    :
    Establish robust evaluation frameworks (hallucination checks, calibration, bias/fairness, adversarial tests), logging/telemetry, safeguards, governance artifacts, and documentation for model risk management.
  • MLOps and Deployment
    :
    Lead the end‑to‑end lifecycle of AI models, from experimentation and prototyping to scalable deployment in production environments using MLOps best practices, CI/CD, and cloud platforms (AWS, Azure, GCP).
  • Performance Monitoring and Optimization
    :
    Optimize inference latency, throughput, and cost; establish monitoring and observability to ensure performance, safety, and reliability in mission‑critical environments.
  • Collaboration and Strategy
    :
    Work closely with AI engineers, software engineers, product managers, and business stakeholders to translate complex business problems into AI‑native solutions with measurable impact.
Our Impact

At Freddie Mac, we are at the forefront of technological innovation, developing AI solutions that transform complex business challenges into streamlined, automated processes. By leveraging advanced AI/ML, GenAI, and Agentic AI technologies, we enable businesses to enhance operational efficiency, make data‑driven decisions, and unlock new opportunities for growth. Our commitment to trustworthy AI and robust risk controls ensures our solutions are reliable, safe, and compliant with industry standards, delivering impactful and sustainable results.

Your

Impact

As a Data Scientist / ML Engineer, you will play a pivotal role in shaping the future of AI‑driven business solutions. Your expertise in data science, LLMs, and Agentic AI will directly influence how businesses operate and succeed. By collaborating with cross‑functional teams, you will drive the implementation of scalable, production‑ready AI solutions that meet the highest standards of performance, safety, and reliability.

Qualifications
  • Bachelor's or equivalent experience; advanced studies/degree preferred. Master’s or Ph.D. in Computer Science, Statistics, Mathematics, or a related quantitative field (or equivalent practical experience).
  • 5+ years of experience in designing and deploying production‑grade AI/ML solutions, including at least one production LLM agent or Agentic workflow.
  • Deep expertise in Python and SQL, with 3+ years of experience in data science and AI/ML frameworks (scikit‑learn, Tensor Flow, PyTorch).
  • 3+ years of proven experience with cloud‑native development and data warehousing solutions (Snowflake, Azure Data Lake, AWS S3).
  • Strong knowledge of LLMs, transformers, NLP, agentic modeling, and reinforcement learning concepts.
  • 2+ years of experience with open and commercial LLMs, RAG pipelines, and agent frameworks (Lang Graph/Lang Chain…
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