Intern – Marketing Data Science & Experimentation (MoneyLion, FinTech
NortonLifeLockUSA - New York, New YorkPosted 27 March 2026
Tech Stack
Job Description
Intern – Marketing Data Science & Experimentation (MoneyLion, FinTech
Location: New York City office (onsite, 5 days per week) for 10 weeks starting 1st June
Function: Trust Based Solutions → MoneyLion Marketing & Yield Analytics (Data Science)
Pay Rate: $30.00 per hour
Products you’ll impact: MoneyLion’s consumer finance products and growth/marketing programs (e.g., acquisition funnels, risk/score-based decisioning, pricing and yield).
Eligibility
Legally authorized to work in the United States for the full duration of the internship, with potential to extend.
Clearly state your current U.S. work authorization status at the top of your CV (e.g., “U.S. citizen”, “permanent resident/green card holder”, “F‑1 with OPT”, etc.).
About Gen & MoneyLion
Gen (Norton, Avast, LifeLock, MoneyLion and more) is a global company powering digital freedom in cybersecurity, identity, privacy and financial wellness for nearly 500 million users in 150 countries. We combine financial empowerment with cyber safety so people can confidently manage and secure their digital and financial lives.
We’re scrappy, customer‑driven, and see AI as a teammate. We create room for healthy debate, experimentation and continuous learning, and we value people with different experiences, identities and ideas.
MoneyLion, part of Gen Digital, is a leading fintech platform with a consumer finance super app and embedded finance products that help millions of Americans make smarter financial decisions. This role sits in the MoneyLion Marketing & Yield Analytics team, focused on experiments and analytics that improve growth, risk and yield.
How You’ll Make an Impact
If you want hands‑on experience at the intersection of fintech, marketing and data science , this role is for you.
As an intern on the MoneyLion Marketing & Yield Analytics team, you will:
Work on real experiments that influence how we acquire, approve and serve MoneyLion customers.
Help design and analyze A/B tests to understand how product, pricing and targeting decisions affect risk, conversion and yield .
Use applied causal inference and heterogeneous treatment effect (HTE) methods to go beyond average results and see whic customer segments respond best.
Turn quantitative findings into clear, actionable recommendations for marketing, product and risk stakeholders.
This is an applied, hands‑on role: you’ll work with data, experiments and business partners—not doing purely theoretical research or deep‑learning projects.
What You’ll Do
1. Experiment Test Plan Organization
Help structure and document a standardized experiment analysis plan for MoneyLion growth, risk and pricing tests.
Create simple, repeatable templates so future HTE analyses are faster and more consistent.
2. Double ML Tooling – Leverage & Refinement
Assist in refining feature inputs and model specs for double machine learning (DML) analyses.
Support basic checks of assumptions and model stability.
Document methods so analyses are reproducible and easy to review.
3. Heterogeneous Treatment Effect Analysis
Select and analyze one live or recent MoneyLion experiment.
Use DML to estimate HTE across: risk tiers, score bands, traffic cohorts and, where relevant, external signals.
Compare heterogeneous results to the average treatment effect (ATE) to see where we win, are neutral, or see adverse effects.
4. Findings & Business Recommendations
Translate DML and HTE outputs into clear yield and growth recommendations.
Highlight segments with positive, neutral and negative incremental lift.
Recommend targeting, routing or pricing adjustments (e.g., where to push harder in marketing, or tighten/relax policies).
Who You Are
You are a current undergraduate or graduate student (rising junior/senior preferred) in Data Science, Statistics/Math, Econometrics, Computer Science, Applied Mathematics, Economics or a similar quantitative field.
You are:
Curious, proactive and eager to learn in a dynamic, fast‑paced environment ... (truncated, view full listing at source)
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