SeatGeek

Senior Machine Learning Engineer

$145K–$209KFull-time · Remote - United States
✓ Verified live on the employer's own system · added 332 days ago
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Mid-level · 4+ yrs exp

Requirements

Experience: 4+ years

Skills & tools

Inventory ManagementMachine LearningFinancial AnalysisProgrammingPythonCloud PlatformsUI UX DesignTeam Leadership

Benefits — mentioned in this posting

Bonus / commission
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Full job description

SeatGeek is a technology innovator on a mission to disrupt the $300 billion ticketing industry. We have the product, vision, and team to make life better for performers, venues, and fans, and build a generational consumer brand in the process. All we’re missing is you.

You will join a group that bridges the gap between research and production-ready ML systems. Your work will directly impact how millions of fans discover and purchase tickets, how we optimize pricing and inventory, how we personalize the SeatGeek experience, and how we prevent fraud across our marketplace. You will design and build ML infrastructure and services that operate at scale, turning complex algorithms into reliable, fast, and maintainable systems that drive business value.

  • Design, build, and deploy machine learning models and systems that operate reliably at scale in production
  • Build and maintain ML infrastructure including feature stores, model serving platforms, and real-time inference pipelines
  • Embed on a product engineering team and collaborate closely with data scientists, PMs ,and Software Engineers to translate research and experimental models into production-ready systems
  • Solve complex technical challenges unique to the ticketing industry, including real-time pricing optimization, demand forecasting, and fraud detection
  • Develop automated ML pipelines for training, validation, deployment, and monitoring using MLOps best practices
  • Work across team and discipline boundaries to evangelize ML capabilities and build them into SeatGeek's core product offerings
  • Experience building and deploying machine learning systems in production environments. We'll be interested in hearing about the systems you've built, the scale you've operated at, and the business impact you've driven
  • 4+ years of experience in software engineering with at least 2+ years focused on machine learning systems and MLOps
  • Strong programming skills in Python and experience with ML frameworks like scikit-learn, TensorFlow, PyTorch, or similar
  • Experience with cloud platforms and containerization technologies
  • Understanding of both batch and real-time ML systems, including experience with model serving, A/B testing, and performance monitoring
  • Passion for software craftsmanship and product. You have well-considered opinions about how systems should be built, and hold yourself and your code to a high standard
  • A product mindset. You think beyond the model accuracy, about user experience, business impact, system reliability, and what makes a great product tick
  • Commitment to your teammates. You enjoy working with a diverse group of people with different experiences and take pride in mentoring and learning from others

You do not need experience with all of these, but we thought you might be curious. What we care about is your experience, skills, and approach to problem solving. Tools can be learned.

  • Languages + Frameworks: Python + FastAPI, Go, C# + .NET Core
  • Cloud: AWS (SageMaker, Redshift, ECS), Airflow for orchestration

The salary range for this role is $145,000 - $209,000 USD. This role is equity eligible. In addition, you may receive a discretionary annual bonus based on individual and company performance.

Actual compensation packages within that range are based on a wide array of factors unique to each candidate, including but not limited to skill set, years and depth of experience, certifications, and specific location.

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This posting was published by SeatGeek on their own careers system and is shown here with a direct link to apply there. Employers: for corrections or removal, contact jobs@veritahire.com.