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Gametime logo
Gametime

Uniting the world through shared experiences.

Director, Applied Machine Learning

Machine Learning EngineerMachine Learning EngineerOtherRemoteLeadTeam 201-500H1B SponsorCompany SiteLinkedIn

Location

United States

Posted

138 days ago

Salary

$292.0K - $343.6K / year

Seniority

Lead

Bachelor Degree6 yrs expEnglish

Job Description

Director, Applied Machine Learning

Gametime

• Partner with Product, Marketing, Operations, and other teams to identify where ML can drive measurable value • Translate business problems into clear modeling objectives, metrics, and experimentation plans • Ensure ML efforts remain tightly aligned with business priorities and user impact • Lead the design, development, and iteration of ranking, filtering, and personalization models across Gametime’s product surfaces • Own modeling approaches, feature strategy, evaluation metrics, and offline and online experimentation • Balance relevance, revenue, and user trust when evolving ranking solutions • Apply LLMs and hybrid ML techniques to use cases such as semantic understanding, intent detection, content generation, and internal workflows • Evaluate emerging tools and techniques, recommending pragmatic adoption where they provide clear benefit • Establish best practices for testing, deploying, and monitoring LLM-powered models in production • Manage and mentor applied ML practitioners, supporting growth in technical depth and business impact • Set high standards for modeling rigor, experimentation discipline, and production readiness • Collaborate closely with ML engineering and platform teams to ensure scalable and reliable deployment

Job Requirements

  • Bachelor's degree in Computer Science, Engineering, or a related field (advanced degree preferred)
  • 6+ years of experience building and deploying production machine learning models
  • Demonstrated experience owning ranking, recommendation, or personalization systems
  • Strong foundation in applied ML techniques such as learning-to-rank, embeddings, gradient boosting, and neural networks
  • Hands-on experience working with LLMs, including prompt engineering, fine-tuning, retrieval-augmented generation, and evaluation
  • Solid software engineering skills and experience working within modern data and ML stacks
  • Proven ability to work cross-functionally and influence without relying on hierarchy.

Benefits

  • Health insurance
  • Retirement plans
  • Paid time off
  • Flexible work arrangements
  • Professional development

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