Truv logo
Monthly
€13,022 - €19,532
Posted June 10, 2026 · 78 days agoLast seen August 26, 2026Est. expiry July 15, 2026

Lead Product Manager

Remote - Global
Remote · Product
Full-time · Senior
English
No People Management
7 years experience
How this salary compares
Salary Context: Lead Product Manager

Hover or tap a row for full statistics (EUR / month on this chart).

Salary analysis

Compared with the selected benchmark ("All roles in Remote - Global"), this listing's salary midpoint is about 123% higher. The offer sits above the benchmark range (€2,366–€14,469). The listed pay band (€15,000–€22,500) is tighter than the benchmark, which suggests lower salary variability. This benchmark is based on 420 comparable listings.

Monthly salary comparison for Lead Product Manager
MarketLower bound (25th percentile)MedianUpper bound (75th percentile)
All roles in Remote - Global€2,366/per month€6,529/per month€14,469/per month
From job ad (Senior)€15,000/per month€18,750/per month€22,500/per month
About the role

About Truv: Truv is building the infrastructure layer that powers consumer-permissioned income, employment, identity, and asset verification. We help lenders, fintechs, and financial institutions make faster, more accurate decisions while delivering a seamless consumer experience. As we continue to expand our data network and verification capabilities, we're looking for a Lead Product Manager to own and scale our Data Sources platform—the foundation that powers document ingestion, fraud detection, bank connectivity, and data reliability across Truv products. This role sits at the intersection of data infrastructure, machine learning, fraud prevention, and financial data aggregation. You will be responsible for building scalable capabilities that improve data coverage, quality, reliability, and trust across Truv's platform. You will work closely with Engineering, Data Science, Fraud, Operations, Customer Success, and GTM teams to deliver products that directly impact conversion, customer satisfaction, and operational efficiency. What You'll Own: Document parsing - Drive the roadmap for parsing income and document types. Improve accuracy, reduce manual review, and shorten time-to-report. Partner with Data Science on extraction models and with Ops on the human-in-the-loop pipeline. Scaling document types - Expand the catalog of supported document types beyond the current set. Identify the highest-impact additions (by use case, client demand, and revenue impact), prioritize the rollout, and own the end-to-end product surface from upload to verified output. Fraud detection - Define and ship the fraud signal layer across data sources — document tampering detection, deposit-pattern anomalies, identity mismatches, and synthetic income flags. Balance precision and recall against client-specific risk tolerances, and build the configuration surface for clients to tune. Optimizing and scaling bank aggregation - Lead the Truv's bank aggregation product, connection success rates, refresh cadence, transaction enrichment, and coverage. Reduce drop-off, improve match rates, and expand FI coverage where it matters most for mortgage and tenant use cases. SLAs and reliability - Set, instrument, and defend SLAs across every data source: time-to-first-data, time-to-completed-report, refresh success rate, document parse accuracy, and bank connection uptime. Drive the dashboards, alerts, and review cadence that make these visible — and the engineering work that makes them improve What You'll Do Set the multi-quarter roadmap for Data Sources across docs, fraud, and aggregation; align it with revenue, client commitments, and platform-level constraints. Write tight specs and 1-pagers; partner with Eng and Data Science to scope, build, and ship. Talk to clients (mortgage lenders, government agencies, tenant screeners) weekly; turn their feedback into prioritized roadmap. Own the metrics — parse accuracy, fraud catch rate, bank connection success, SLA hit rate — and the rituals that drive them up. Lead and mentor PMs and engineers on the team; raise the bar on shipping speed and quality. Represent Truv's data sources story externally (sales calls, conferences, partner reviews). Who You Are: 7+ years in product management, with significant time in data, ML/AI, fintech, or verification / identity platforms. Demonstrated experience owning a data-intensive product — document understanding, OCR, financial data aggregation, fraud, or similar — at meaningful scale. Strong technical fluency. You can reason about extraction models, API tradeoffs, and pipeline architecture without needing to be hand-held by engineering. Track record of driving SLA / reliability outcomes — not just shipping features, but moving the numbers that matter. Experience working with regulated industries (mortgage, lending, government) is a strong plus. GSE / FCRA / FNMA / FHLMC familiarity especially. Strong written communication. You write the 1-pagers and specs that align the team. Customer obsession. You spend real time with users and let what you learn shape the roadmap. Worked on a verification or KYC/KYB product used by lenders. Comfortable shipping in a startup environment where ambiguity is high and the bar moves up. Why this role: High leverage. Data sources are upstream of every Truv product. Improvements compound across mortgage, tenant screening, government, and any new vertical we enter. Mature platform, room to push. Truv ships in production with major mortgage lenders today. Your job is to take a working platform and make it best-in-class. Real complexity. Document parsing, fraud, and bank aggregation each have multi-year roadmaps. You'll get to operate across all three as one cohesive system. Tight team. You'll work directly with senior leadership, the engineering teams that own these surfaces, and the largest clients in the space. $180,000 - $270,000 a year Base salary; bonus and equity package are additional. We are an equal-opportunity employer committed to diversity. We do not discriminate based on race, color, religion, sex, sexual orientation, gender identity, national origin, age, disability, veteran status, or any other protected status. We may use artificial intelligence (AI) tools to support parts of the hiring process, such as reviewing applications, analyzing resumes, or assessing responses and identifying potential inconsistencies or verification signals in application materials based on available information. These tools assist our recruitment team but do not replace human judgment. Final hiring decisions are ultimately made by humans. If you would like more information about how your data is processed, please contact us.

Job Details

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