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Senior Data Scientist

Job in Florham Park, Morris County, New Jersey, 07932, USA
Listing for: New York Jets
Full Time position
Listed on 2026-02-07
Job specializations:
  • IT/Tech
    Data Scientist, Data Analyst
Job Description & How to Apply Below

The New York Jets are building a world-class football analytics program that turns complex data into clear, actionable decisions. As a Senior Data Scientist, you’ll lead high-impact modeling and research across player evaluation, coaching support, and football strategy—while setting the technical standard for how we design, validate, deploy, and communicate models s role is for a collaborative, high-ownership teammate who can architect end-to-end pipelines and evaluation processes, and who is fluent in modern deep learning within a competitive environment.

Core

Responsibilities
  • Architect modeling systems that are repeatable, auditable, and production-ready: data → features → training → evaluation → delivery/monitoring.
    • Design evaluation frameworks (calibration, uncertainty estimation, bias/error analysis) to ensure models are ready to support high impact decisions.
    • Deliver research and analysis for:
      • Player evaluation (e.g., forecasting, role/fit analysis, contextualization across situations).
      • Coaching support requests (rapid-turn insights with clear assumptions/limitations).
      • Football research (longer-horizon studies that improve the organization’s decision-making).
    • Partner cross-functionally with coaching, scouting, performance, and football operations to define problems, translate questions into measurable outcomes, and communicate results clearly.
    • Mentor and raise the bar for DS best practices: code quality, review, documentation, experimentation standards, and reproducibility.

Required Qualifications:

  • Football / Domain – Prior NFL or sports experience is preferred (club, league, or NFL-adjacent role where you shipped analytics that informed football decisions).
  • Strong understanding of football, with the ability to translate football questions into rigorous analyses without over-complicating the output.
  • Proven ability to collaborate in high-trust environments with diverse stakeholders and tight timelines.

Technical Leadership & Modeling Architecture – Demonstrated experience owning end-to-end modeling pipelines—including data sourcing, feature design, training, evaluation, deployment/packaging, and ongoing monitoring.

  • Expertise in building evaluation processes beyond a single model:
  • Principled baselines.
  • Back testing and leakage prevention.
  • Uncertainty quantification and calibration.
  • Clear decision recommendations and tradeoffs.
  • Ability to operate at “Principal” level: scoping ambiguous problems, setting technical direction, and aligning stakeholders.

Deep LearningHands-on experience applying deep learning in production or near-production settings, including one or more of the following:

  • Neural nets and/or transformers
  • Representation learning / embeddings
  • Modern training practices (regularization, optimization, early stopping, hyperparameter search)
  • Proficiency with at least one deep learning framework (e.g., PyTorch or Tensor Flow) and comfort working with GPU-enabled workflows

Data & Software Foundations – Strong proficiency with Python or R and SQL.

  • Strong software engineering habits:
  • Version control (Git), code review, testing.
  • Modular, maintainable codebases.
  • Documentation and reproducibility (experiment tracking, model/version provenance).
  • Experience integrating data from multiple sources and producing reliable datasets for downstream modeling and reporting.

Communication & Teamwork – Excellent written and verbal communication—able to explain methods, results, and limitations to both technical and non-technical partners.

  • Demonstrated ability to deliver both:
  • Rapid-turn answers (triage, directional insight).
  • Deep research (rigorous studies with clear takeaways).
  • Low-ego teammate: collaborative, pragmatic, and committed to shared success.

Preferred Qualifications:

  • Master’s degree or higher in a quantitative field (e.g., Statistics, CS, Applied Math, Physics, Engineering, Economics).
  • Experience with one or more of:
  • Causal inference.
  • Bayesian/hierarchical modeling.
  • Time-series or survival modeling
  • MLOps tooling (containers, orchestration, CI/CD patterns, model registries).
  • Databricks or similar orchestration platforms.
  • Experience leading and mentoring other data scientists and influencing technical standards across a team.

Sala…

Position Requirements
10+ Years work experience
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