AI Native Consumer Loan Servicer. Backed by Y Combinator.
About the role
This is a unique role in that we are looking for a data engineer with strong analytical and product mindset. An ideal candidate would come up with hypothesis and create the tooling needed to verify or invalidate their hypothesis. We have a small team of less than 10 people. 30 days: you will evaluate our communications strategies and determine how to increase our conversion rate. We do about millions of touch points per month across our borrowers.
What they're looking for
- Define the data strategy and how Finosu collect or leverage data to build a competitive advantage
- You won’t always have the benefit of statistical significance, so intuition and taste will be important
- Closely report to the founders about the results of the experiments
- 30/60/90
- 60 days: you will run A/B tests with our AI agents on borrowers on the platform
- Evaluated our communication strategies and optimize them
More about this role
Finosu is an AI-native loan servicer. What is that? A servicer handles the communications and payment rails for lenders. The servicing industry services over 10 trillion dollars of debt a year.
Loan servicing is the perfect application for AI. Borrowers want help on their time, not during call center hours, and AI makes 24/7 support real for the first time. It also makes compliance better, not worse: every interaction follows the rules, every disclosure is delivered, and everything is logged and auditable. What makes us different is how we measure success. We are not judged on generic CSAT scores. We are judged on dollars generated for our lenders, and it turns out the two go together: borrowers who are treated well perform better.
We know this problem because we lived it. Our founders built a $200M consumer lender together, owning the end-to-end stack from origination through servicing and collections. We felt every broken part of it firsthand: the vendors that didn't care about outcomes, the compliance gaps, the borrowers who fell through the cracks. So we are building the thing we wished we had.
We are a start-up and our processes are in flux. Priorities might shift more...
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