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SeatGeek

Senior Data Analyst, Risk Analytics

Work from home

Remote role where the employee must remain based in a particular country.

United States only

Employer listed it 4 weeks ago · Added today

Been open since 4 weeks ago, still being checked, but it has been live a while.

Salary

$108,000 to $157,000

Location

United States only

Timezone

US East

Contract

Full-time

Experience

Senior

Category

Data

Stated by the employer in the job description

Remote flexibility

Work from home

This is a remote role, but the employee must be based in United States. It is work from home rather than work from anywhere.

What the employer says

  • Source listing states candidate location: "Remote - United States, United States"

What Nomaders makes of it

  • Residency required in United States
  • Payroll and tax are likely handled in that country only

The quotes above are the employer's own words; the reading is ours. Always check the original listing and employment terms before working from another country.

About the role

SeatGeek believes live events are powerful experiences that unite humans. With our technological savvy and fan-first attitude we’re simplifying and modernizing the ticketing industry.

As a Senior Analyst on the Risk Analytics team, you will be the analytical engine behind our fraud prevention strategy. You will build models, run experiments, and develop tools that help us make smarter, faster decisions, reducing reliance on external black boxes and static rules. You will work closely with the Manager, Risk Analytics, owning the technical and statistical work that turns strategy into something measurable and executable. You will also be a key driver of how our team uses AI: not just adopting tools as they come, but actively building workflows, automating repetitive analysis, and thinking ahead about how AI can keep us one step ahead of increasingly sophisticated fraud.

What you'll do

Build and maintain Python-based analyses, models, and data pipelines that support fraud decisioning, vendor evaluation, and internal risk scoring

Design and run statistical experiments from hypothesis through measurement and communication of results, including A/B tests on routing changes, holdout experiments, and vendor performance assessments

Develop and iterate on internal fraud risk models using SeatGeek transaction and vendor data; own model calibration, validation, and ongoing performance monitoring

Actively use AI tools including LLMs, code generation, and agentic workflows to move faster and build smarter; help define how AI gets embedded into the team's analytical processes, and identify opportunities to automate work currently done manually

Contribute to vendor performance analysis: assess score calibration, measure lift across segments, and surface findings that inform routing decisions and contract discussions

Build and maintain dashboards and reports in Looker and Hex; develop SQL models and data views to support the team's analytical needs

Monitor fraud and operations metrics, investigate anomalies, and escalate findings with a clear point of view on recommended actions

Collaborate with Risk Ops agents, the manager, and cross-functional partners in Engineering, Payments, and CX to translate analysis into action

What you have

3+ years of experience in fraud analytics, risk, fintech, or a quantitatively demanding analytical role

Strong Python skills; you build end-to-end analyses and pipelines independently, and are proficient with pandas, scikit-learn, statsmodels, or equivalent libraries

Strong SQL; you can own complex data pulls, understand warehouse structures, and build views and models that others rely on

Solid statistical grounding: you can design statistically valid experiments, perform significance testing, assess model calibration, and communicate findings clearly to a non-technical audience

Hands-on experience building, training, and validating classification models independently; familiarity with model evaluation methods, handling class imbalance, and translating model outputs into business decisions

Genuine enthusiasm for AI tools: you actively use LLMs and code generation in your day-to-day work, think about how to design AI-assisted workflows, and take initiative in identifying where AI can replace manual effort

Comfort operating in ambiguity; you are expected to define the problem as much as solve it

Familiarity with fraud vendors such as Forter, Riskified, or Sardine is a plus; experience with Looker or similar BI tools is a plus

Perks

Equity stake

Discretionary annual bonus

Flexible work environment, allowing you to work as many days a week in the office as you’d like or 100% remotely

Requirements

  • ·3+ years of experience in fraud analytics, risk, fintech, or a quantitatively demanding analytical role
  • ·Strong Python skills; you build end-to-end analyses and pipelines independently, and are proficient with pandas, scikit-learn, statsmodels, or equivalent libraries
  • ·Strong SQL; you can own complex data pulls, understand warehouse structures, and build views and models that others rely on
  • ·Solid statistical grounding: you can design statistically valid experiments, perform significance testing, assess model calibration, and communicate findings clearly to a non-technical audience
  • ·Hands-on experience building, training, and validating classification models independently; familiarity with model evaluation methods, handling class imbalance, and translating model outputs into business decisions

Benefits

  • ·Discretionary annual bonus
  • ·Flexible work environment, allowing you to work as many days a week in the office as you’d like or 100% remotely
  • ·A WFH stipend to support your home office setup
  • ·Up to 16 weeks of fully-paid family leave

How to apply

  1. 1Check the flexibility label above, work from home, matches where you plan to live and work.
  2. 2Tailor your CV to the role at SeatGeek, mentioning your remote working experience and working hours (US East).
  3. 3Apply directly on the employer's careers page using the button below. Nomaders never handles your application.

Found 14h ago. Last checked today. Always confirm the details on the original posting, salary and location can change after publication.

Listing sourced from Company boards.

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