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Burtch Works

Machine Learning Engineer

Burtch Works, WorkFromHome

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This range is provided by Burtch Works. Your actual pay will be based on your skills and experience — talk with your recruiter to learn more.

Base pay range

$120,000.00/yr - $150,000.00/yr

Job Title: Machine Learning Engineer
Location: Washington, D.C. (Hybrid - 2 days onsite)
About The Company
Our client is a global leader in AI-optimized scheduling and forecasting platforms, empowering and rewarding individuals in the fast-food and Quick Service Restaurant (QSR) industry through innovative solutions. The company fosters a dynamic startup environment, encouraging innovation, collaboration, and ownership.
Job Summary
The Machine Learning Engineer will design, train, deploy, and monitor machine learning models that address real-world customer needs. This role is central to scaling AI-powered scheduling and forecasting solutions. The position is based in Washington, DC, and reports to the Chief Analytics Officer.
Key Responsibilities

  • Build and test machine learning models to support their platform.
  • Design, build, and deploy data and ML pipelines on AWS.
  • Enable an iterative lifecycle for data products to improve, integrate, and deploy.
  • Standardize workflows, analysis, and modeling for deployment and observability in production.
  • Develop monitoring and observability systems for ML models and experiments.
  • Collaborate across teams to align modeling with engineering standards.
Requirements
  • Education: Bachelor’s or Master’s degree in a quantitative field.
  • Experience:
    • 2–4 years of relevant experience.
    • 4+ years’ experience with Python and ML frameworks.
    • 1+ year of experience with MLOps and maintaining ML models at scale.
  • Technical Skills:
    • Strong knowledge and hands-on experience with:
      • Python programming
      • SQL and relational databases; ETL processes
      • Cloud technologies (AWS, GCP, or Azure)
      • Git or other version control systems
      • Model versioning/tracking (DVC, MLFlow)
      • ML pipeline development/deployment (Metaflow, Kubeflow, Prefect, Dagster)
      • Containers (Docker, Kubernetes)
      • Visualization and monitoring tools (Dash, Streamlit)
      • Modeling/tuning/optimization with frameworks (sklearn, PyTorch)
Preferred Qualifications
  • Real-time inference deployment and monitoring (FastAPI, Ray Serve).
  • CI/CD practices.
  • Model deployment strategies (A/B testing, canary release).
  • Cross-functional collaboration (DevOps, Data Engineering, Data Science).
  • Time series analysis and predictive modeling.
Benefits
  • Salary range: $120-150K
  • Health and Wellness: Industry-best benefits.
  • Work-Life Balance: HYBRID – 2 days in office, 3 days from home.

Seniority level

  • Seniority level

    Mid-Senior level

Employment type

  • Employment type

    Full-time

Job function

  • Job function

    Engineering and Information Technology
  • Industries

    IT Services and IT Consulting

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