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Rho
New York City, New York, United States
Source: Rho careers · View original posting
From Rho's posting. “We” and “our” refer to the employer.
Rho is the modern banking platform built for the AI era. Startups and growth-stage companies can open accounts in minutes, issue cards, manage expenses, pay bills, and close the books – all in one connected platform backed by real human support.
You'll work on high-impact data projects that help Rho detect, prevent, and better understand customer behavior, from identifying early churn signals to mapping growth opportunities. Your work will directly support Rho's growth engineering function, the systems that power expansion, retention, and churn mitigation. The work spans designing experiments, building predictive models, extracting insights from unstructured data, and working with large, complex datasets.
You'll collaborate across teams to drive workflow efficiency, improve customer retention, and influence product direction, taking full ownership of your analyses and communicating your findings clearly to technical and non-technical audiences.
Potential Projects
New churn leading indicators.
The current set catches a lot, but not everything. Hunt for earlier, cleaner predictors of account churn and treasury drawdown. Backtest candidates against known outcomes and graduate what holds.
New expansion and deposit-growth signals.
The upside side of the book is less built out than the churn side. What predicts an account is about to move more money onto Rho, hire, raise, or grow its treasury? Generate and test candidates.
Unstructured data as a new signal source.
Today's entire signal universe lives in the warehouse; call transcripts are untouched. Build LLM extraction experiments to pull signals that will never appear in transaction data: a competitor mentioned on a call, product-limit frustration, expansion intent voiced directly. A different modality, genuinely additive.
Probabilistic modeling.
Move signal scoring from hand-tuned rules toward measured weights. Model how signals interact, quantify which combinations actually matter, and cluster accounts into behavioral archetypes.
Graph and network signals.
Map shared-investor and vendor co-occurrence structure for fundraise-contagion detection and referral clusters. Untouched today.
Customer health modeling.
Improve how we model account health over time: how accounts move between health states, what predicts those transitions, and where intervention changes the trajectory.
Playbook effectiveness.
Analyze how post-sales teams respond to churn signals and identify where playbooks could improve.
GTM workflow efficiency.
Find and remove friction in how signals reach the field.
Product adoption.
Analyze adoption patterns, identify behaviors that predict or drive adoption, and use them to make customers stickier.
LAYIQ is an independent job-discovery service. This listing does not imply a partnership with or endorsement by the employer. Review the original posting for current details and availability.
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