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GR8 Tech

Launch, grow, or upgrade your iGaming business with GR8 Tech high-performance Sportsbook and iGaming platform.

Senior Machine Learning Engineer, Research Team

Machine Learning EngineerMachine Learning EngineerOtherRemoteSeniorTeam 501-1,000H1B No SponsorCompany SiteLinkedIn

Location

United States

Posted

131 days ago

Salary

0

Seniority

Senior

Job Description

Senior Machine Learning Engineer, Research Team

GR8 Tech

• Take technical ownership of core components of recommendation and personalization systems (retrieval, ranking, evaluation). • Design and evolve two-tower / embedding-based retrieval models and downstream rankers. • Drive architectural and modeling decisions with a strong understanding of trade-offs between model quality, system complexity, latency, and cost. • Define and promote best practices for ML system design, experimentation, evaluation, and deployment. • Review ML designs, pipelines, and code with a focus on correctness, maintainability, and production readiness. • Act as a technical point of reference for ML-related decisions within the team. • Develop, train, and improve ML models for retrieval and ranking use cases. • Work with embedding-based deep learning models and classical ML approaches. • Perform in-depth data analysis, feature exploration, and systematic error analysis. • Build reproducible experiments and robust offline evaluation pipelines. • Optimize models for both offline metrics and online business KPIs. • Design and operate batch and real-time training and inference workflows in a cloud environment, with awareness of scalability and cost trade-offs. • Design, run, and analyze offline experiments and online A/B tests. • Own ML components in production, with a strong focus on reliability, observability, and safe iteration. • Monitor model performance and data quality in production. • Collaborate on scalable training and serving infrastructure for ML systems. • Participate in incident analysis related to ML systems and contribute to root-cause analysis and long-term fixes. • Design ML systems with failure modes in mind, including fallbacks and graceful degradation. • Work closely with Data Engineering on data pipelines and feature generation. • Partner with Product and Analytics to translate business goals into clear ML objectives and success metrics. • Act as a technical mentor for ML engineers, providing guidance on modeling, experimentation, and production ML. • Provide constructive feedback through code reviews and design discussions, supporting the growth of the team.

Job Requirements

  • 5+ years of experience in Machine Learning / Applied Data Science.
  • Strong Python skills and experience writing production-quality ML code.
  • Solid foundation in core ML and data science tools: NumPy, Pandas, scikit-learn, etc.
  • Hands-on experience with deep learning frameworks (PyTorch or TensorFlow).
  • Practical experience with embedding models and similarity-based retrieval.
  • Experience with tree-based models (LightGBM, XGBoost).
  • Strong understanding of ML evaluation, experimentation, and applied statistics.
  • Experience deploying, operating, and maintaining ML models in production environments.
  • Proficiency with Git, Linux, Docker, and standard ML development workflows.
  • Practical experience deploying ML systems in a cloud environment (AWS or equivalent).

Benefits

  • Benefits Cafeteria — annual budget you allocate to: Sports
  • Medical
  • Mental health
  • Home office
  • Languages.
  • Paid maternity/paternity leave + monthly childcare allowance.
  • 20+ vacation days, unlimited sick leave, emergency time off.
  • Remote-first + tech support + coworking compensation.
  • Team events (online/offline/offsite).
  • Learning culture with internal courses + growth programs.

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