Senior Product Manager @Yassir
Product Management
Salary unspecified
Employment Type full-time
Posted YDay

[Hiring] Senior Product Manager @Yassir

YDay - Yassir is hiring a remote Senior Product Manager. πŸ’Έ Salary: unspecified πŸ“Location: Northern America, Northern Africa, Sub-Saharan Africa, Western Europe

Role Description

Yassir's marketplace runs on decisions made millions of times a day: which driver gets which trip, what a ride should cost, when an order will arrive, which transaction looks fraudulent, who qualifies for credit. We are looking for a Product Manager who owns the machine learning systems behind those decisions and is accountable for their measurable impact on the business.

This is a product role for ML-heavy, data-intensive products. You will:

  • Lead discovery from data rather than from opinion.
  • Frame business problems as problems a model can actually solve.
  • Define what success means both offline and in production.
  • Prove impact through well-designed experiments.
  • Work closely with data scientists, ML engineers, and data engineers, and with product and operations partners across ride-hailing, delivery, and financial services.

Responsibilities

  • Data-led discovery: Identify and size ML opportunities by going into the data yourself. Diagnose where the marketplace is losing value (supply-demand imbalance, cancellations, ETA error, fraud losses, default rates) and translate it into a prioritised, quantified problem backlog.
  • Problem framing: Turn business problems into well-posed ML problems: define the prediction target, the decision it informs, the unit of analysis, label availability and quality, and the cost of different error types. Know when a problem does not need ML and a rule or heuristic will do.
  • Metrics and success criteria: Define the chain from model metrics (e.g. precision/recall, calibration, MAE) to product and business metrics, and own guardrail metrics. Understand why offline gains often fail to translate online, and plan for it.
  • Experimentation and causal inference: Design and interpret controlled experiments, including in two-sided marketplace settings where interference makes standard A/B tests unreliable (switchback, geo or cluster-randomised designs). Reason about statistical power, novelty effects and heterogeneous impact across cities and segments. Distinguish correlation from causation, and know which quasi-experimental methods to use when randomisation isn't possible.
  • ML product lifecycle: Own models from framing through data requirements, baseline, iteration, launch, monitoring and retirement. Partner with engineering on rollout strategy, model monitoring, drift detection, retraining cadence and failure modes. Treat a model in production as a product that degrades if unattended.
  • Roadmap and trade-offs: Own the ML product roadmap across domains and countries. Make explicit trade-offs between accuracy, latency, cost, interpretability, fairness and regulatory requirements, especially in credit and financial services.
  • Stakeholder alignment and visibility: Make the impact of ML work legible to non-technical leadership. Communicate results, including null and negative results, with rigour and clarity. Align product, operations, risk and marketing partners on shared objectives.
  • Leadership and culture: Raise the bar on how the organisation makes decisions with data. Mentor peers, build a culture of feedback and trust, and invest in your own growth and that of those around you.

Qualifications

  • 4+ years of product management experience, including at least 2 years owning ML-driven products that run in production and influence core business decisions (e.g. pricing, matching, ranking, forecasting, fraud, credit risk, recommendations).
  • Hands-on fluency with data: you can write SQL, explore data independently and challenge an analysis without waiting for someone else to run it.
  • Demonstrated experience designing, running and interpreting controlled experiments, and a solid working understanding of causal inference.
  • Strong understanding of core ML concepts: supervised learning, evaluation metrics and their trade-offs, overfitting and leakage, bias, calibration, and the relationship between offline and online performance.
  • A track record of shipping ML products where you can clearly articulate the problem framing, the metrics chosen, the experiment design and the measured business impact, including what went wrong.
  • Experience working with distributed or remote teams across multiple markets.
  • Experience in marketplaces, mobility, on-demand delivery or fintech is a strong plus.
  • BSc/MSc in Engineering, Computer Science, Statistics, Data Science or a related quantitative field.

Requirements

  • 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.
Before You Apply
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remote Be aware of the location restriction for this remote position: Northern America, Northern Africa, Sub-Saharan Africa, Western Europe
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Senior Product Manager @Yassir
Product Management
Salary unspecified
Employment Type full-time
Posted YDay
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