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Data Scientist (Fraud)

Moniepoint

LocationKenya
SeniorityOpen seniority
CompanyMoniepoint
Verified recentlyChecked today
Compensation

Salary not listed

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Requirements and working style

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Experience

3+ years stated

Benefits stated
Health insurance

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WFH.team analysis

What this posting tells you

Role lane

Backend, Customer success, Data, Design and creative, Finance and investments, Operations, Product, Security, Software

Where you can work

Kenya

Working hours

Timezone overlap is not stated.

Arrangement

full_time

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  • Required timezone overlap is not stated
  • Compensation is not listed
  • Seniority is not stated
Market context

Backend hiring on WFH.team

3,520active related roles
1,733new in the latest period
166.6jobs per 100 candidates
$211kmedian of comparable listed ranges

Category counts come from WFH.team's latest published remote job market snapshot.

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Skills and signals
ComputeDataGoNodeOperationsPlatformProductPythonRustSQLRemote, Kenya
Job description

Data Scientist (Fraud) at Moniepoint

Who we are

Ranked in 2024 by the Financial Times, Moniepoint is Africa’s fastest-growing fintech, trusted by over 10 million business and individual accounts, processing billions of Naira in transactions monthly . Our mission is to enable financial happiness for every African, everywhere .

About this role

We're looking for a Data Scientist to sit at the heart of how we fight fraud — building the models, experiments, and detection systems that protect millions of customers and merchants across our platform . This is a high-impact role at the intersection of machine learning, product, and engineering, where your work will directly shape how Moniepoint detects and responds to emerging fraud threats .

You are a data-driven, intellectually curious Data Scientist who is energized by hard problems in fraud and financial crime . You'll prototype and ship ML models, design experiments, and uncover new fraud signals across our ecosystem — partnering closely with engineers, product managers, and analysts to turn your work into production-grade systems .

Responsibilities

  • Prototype, evaluate, and help produce machine learning models for fraud detection; own their ongoing monitoring and retraining cycles .
  • Design and run experiments to measure the impact of fraud interventions, balancing customer experience against loss reduction .
  • Size fraud typologies across our product lines to inform prioritization and investment decisions .
  • Build and maintain anomaly detection systems to surface novel fraud vectors before they scale .
  • Work closely with fraud operations, engineers, product managers, and data analysts to translate model outputs into real-world mitigations .

Experience & Background

  • A strong foundation in statistics with a degree in a quantitative field (Statistics, Mathematics, Engineering, Computer Science, or similar).
  • 3+ years of experience in data science, decision science, or risk analytics within fraud, payments, or financial crime.
  • Hands-on experience building and deploying machine learning models in a production environment.
  • Fraud, risk, or financial services experience is a strong plus.
  • Solid grounding in data science fundamentals: experimentation, statistical inference, model evaluation, and feature engineering.
  • Comfort working in fast-paced, cross-functional teams with high ownership expectations.

Skills & Competencies

  • Proficiency in Python and SQL; comfort working across the full model development lifecycle .
  • An investigative instinct — you enjoy digging into data to find patterns others miss .
  • The ability to communicate technical findings clearly to non-technical stakeholders and translate insights into action .

What Success Looks Like in This Role

  • Production-grade ML models and anomaly detection systems that effectively surface and mitigate novel fraud vectors before they scale .
  • Well-designed experiments that successfully balance customer experience against fraud loss reduction .
  • Clear sizing of fraud typologies that effectively drives product prioritization and strategic investment decisions .
  • Seamless cross-functional alignment where technical model outputs are consistently translated into real-world fraud mitigations .

Why Join Us?

  • Culture: We put our people first and prioritize the well-being of every team member . We've built a company where all opinions carry weight and where all voi ces are heard . We value and respect each other and always look out for one another . Above all, we are human .
  • Learning: We have a learning and development-focused environment with an emphasis on knowledge sharing, training, and regular internal technical talks .
  • Compensation: You'll receive an attractive salary, pension, health insurance, annual bonus, plus other benefits .

Moniepoint is an equal opportunity employer. We celebrate diversity and are committed to creating an inclusive environment for all employees and candidates.

Company context

Working remotely at Moniepoint

Moniepoint Inc. (formerly TeamApt) is a Nigerian-founded fintech company providing an all-in-one digital financial services platform for businesses and individuals in Africa, offering payments, banking, credit, and business management tools.

Headquarters
Nigeria
Team size
1001-5000
Founded
2015
Remote policy

Remote hiring signal is inferred from active confirmed-remote job listings.

Application process

Review current openings on Moniepoint's official careers page before applying.

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