Founding Machine Learning Engineer

Work at Onescreen
  • Boston, Massachusetts
    30+ days ago

    Job Description

    About the role

    You'll be the founding ML engineer who owns our matching algorithms from exploration through production and the data platform that feeds them. You'll design and ship the models that rank OOH inventory against advertiser personas, markets, and dayparts. You'll own our data warehouse shape and the pipelines that fill it. You'll publish the ranking and matching APIs that downstream products, agents, and automation surfaces consume.


    What you'll do

    • Design and ship matching and ranking models for OOH inventory: candidate generation, re-ranking, geospatial-aware scoring.
    • Own the data warehouse layer end to end: staging, marts, feature pipelines, freshness, lineage.
    • Stand up offline and online evaluation infrastructure — measure the gap between them, don't assume it.
    • Publish ranking and matching APIs for product surfaces, with latency and quality SLOs.
    • Instrument model monitoring: drift detection, prediction distribution, feature freshness, retraining triggers.

    Qualifications

    The hard requirement: you have owned a production ranking, matching, or recommendation system end-to-end. You chose the model, designed the features, made the evaluation methodology calls, and were on the hook when it drifted. We care about that ownership scope more than years on a résumé — title and compensation are scaled to your demonstrated expertise.

    Beyond that:

    • Strong production Python (NumPy, Pandas, FastAPI, SQLAlchemy).
    • Strong SQL and modern data warehouse experience (BigQuery preferred).
    • Real ranking and matching modeling fluency — learning-to-rank, retrieval and re-rank patterns, not just classification.
    • Evaluation methodology rigor: holdouts, leakage prevention, online vs. offline gap measurement.
    • Comfort owning the data pipeline as well as the model.
    • Bias toward shipping. Clear writer. Self-directed.

    Nice to have

    • Geospatial data experience (H3, PostGIS, GeoPandas)
    • Mobility or location data experience
    • Embedding-based retrieval (pgvector, FAISS, vector databases)
    • Bandits, contextual bandits, or online learning
    • A/B testing infrastructure design
    • Causal inference
    • dbt
    • Ad-tech or OOH domain familiarity

    Numbers & Facts

    LocationBoston, Massachusetts

    Skills

    • A/B Testingunmatched
    • Algorithmsunmatched
    • Application Programming Interface (API)unmatched
    • Candidate Sourcingunmatched
    • Data Managementunmatched
    • Data Warehousingunmatched
    • Machine Learningunmatched
    • Python Programming/Scripting Languageunmatched
    • SQL (Structured Query Language)unmatched
    • Spatial Dataunmatched
    • Test Designunmatched
    • Web Infrastructureunmatched
    • Writing Skillsunmatched
    • eLearningunmatched

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