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Risk Analytics Specialist

Job in Boston, Suffolk County, Massachusetts, 02298, USA
Listing for: Flexcar
Full Time position
Listed on 2026-02-19
Job specializations:
  • IT/Tech
    Data Analyst, Data Science Manager
Salary/Wage Range or Industry Benchmark: 90000 - 104000 USD Yearly USD 90000.00 104000.00 YEAR
Job Description & How to Apply Below

Job Title:

Risk Analytics Specialist

Location:

Onsite — Boston HQ

Employee Type:
Full Time, Exempt — 50 hours/week

Compensation: $90,000 - $104,000* + Bonus + Full Benefits (day one)

Reports To:

VP Risk

About Us

Join a dynamic startup pioneering a new category in the $90 billion automotive industry. Flexcar is the first and only zero-down, month-to-month car lease, currently active in four markets and expanding rapidly. We're redefining what car ownership means.

At Flexcar, we don't sell cars. We sell freedom.

  • Freedom from car loans
  • Freedom from used car salesmen, insurance agents, and car mechanics
  • Freedom to cancel anytime
  • Freedom to drive any car, anytime
Role Overview

In automotive financing, Risk management determines profitability, growth, and regulatory sustainability. Traditional risk teams become "blockers";
Flexcar reimagines Risk as a strategic growth partner through unified, data-driven decision-making.

This unique hybrid role combines three analytical perspectives in one position:

  • Product Operations — Metrics ownership, feature evaluation, business case development
  • Data Science — Predictive modeling, statistical rigor, hypothesis testing
  • Risk Management — Underwriting principles, loss pattern analysis, policy implications
  • You’ll quantify growth-risk trade-offs, measure feature impact before scaling, bridge operational execution with statistical depth, and transform risk policies into data-driven strategy.

    What You’ll Do Metrics Ownership & Monitoring (25%)

    Own daily, weekly, monthly, and quarterly tracking across 8 Risk functions: approval rates, fraud detection, delinquency patterns, compliance metrics, and feature impact. Become the "source of truth" for Risk performance.

    Predictive Modeling & Feature Evaluation (30%)

    Build predictive models for credit risk scoring, fraud propensity, and claims forecasting. Evaluate features through structured business cases: hypothesis → analysis → recommendation → deployment → monitoring. Example: "Lowering credit threshold to 620 increases approvals 3%, defaults 1.2%, net positive per customer."

    Data-Driven Policy Influence (20%)

    Navigate competing stakeholder interests (Risk vs. Growth) through data credibility. Recommend policies backed by evidence. Success metric: >50% of recommendations adopted by leadership.

    P&L Line Item Expertise (15%)

    Conduct quarterly variance analysis connecting Risk metrics to financial impact. By Month 12, articulate how policy changes affect profitability and contribute to financial strategy discussions.

    Experimentation & Infrastructure (10%)

    Design valid experiments (A/B tests, cohort analysis, scenario testing). Maintain documentation, dashboards, and processes. Improve data infrastructure and analytical tooling.

    Required Qualifications
    • Bachelor's degree in Statistics, Economics, Data Science, Computer Science, Mathematics, Finance, or Engineering
    • 2-4 years in data analytics, product operations, data science, risk modeling, or related analytical role
    • SQL: Intermediate-Advanced (joins, subqueries, window functions; complex query in 1-2 hours)
    • BI Tools: Tableau, Looker, Sigma, Lovable, or Power BI (design dashboards, create compelling visualizations)
    • Statistics: Understand statistical significance, confidence intervals, A/B test design, hypothesis testing, Model Performance Management
    • Python or R: Write analytical scripts independently, understand library documentation, debug code
    • Predictive Modeling: Linear/logistic regression, decision trees, random forests, time series forecasting
    Soft Skills
    • Communication: Explain complex technical findings to non-technical stakeholders in accessible language
    • Cross-Functional Collaboration: Navigate competing interests, build credibility across Risk, Product, Finance
    • Influencing Without Authority: Recommend policies through evidence and data credibility, not position
    • Business Acumen: Connect analytics to P&L implications, understand Flexcar business model
    • Domain experience (Fin Tech/Insur Tech/), cloud platforms (Snowflake/Sigma/Redash), Agile methodologies
    • Pragmatism: Balance rigor with timeline pressure (80% accurate in 1 week beats perfect in 4 weeks)
    What You’ll Love About This Role
    • Supportive Leadership: Your…
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