Data Scientist (AI-Native) — Growth & Credit

Posted 3 Days Ago
Be an Early Applicant
Hiring Remotely in Kenya
Remote
Mid level
Fintech • Software • Financial Services
The Role
The role involves building and optimizing credit scoring models, analyzing customer acquisition through data science techniques, and leveraging AI tools for enhanced efficiency in model deployment and monitoring.
Summary Generated by Built In
Data Scientist (AI-Native) — Growth & Credit
Location: Nairobi, Kenya (in-office)
About Umba
Umba is a pan-African digital bank operating in Kenya and Nigeria, with a mission to make financial services
more accessible, affordable, and empowering for millions of people across Africa.
We're transforming how banking works on the continent by building intelligent, automated financial products
powered by machine learning. Our platform offers digital banking, lending, and payments through Android,
iOS, and Web applications, serving both individuals and businesses at scale.
Headquartered in Nairobi, Umba acquired a licensed deposit-taking microfinance bank in 2023 and has
since grown revenue more than sixfold.
We're looking for exceptional people who share our ambition, energy, and belief that technology can unlock
financial freedom. Join us as we build Africa's leading digital bank.
About the Role
We're hiring a Data Scientist to own the two models that decide whether Umba grows profitably: how we
acquire customers, and how we underwrite them.
On the credit side, you'll build and continuously improve the scoring systems that decide who we lend to and
on what terms — drawing on bank statement data, payments history, CRB (Credit Reference Bureau) data,
and the behavioural signals we collect across our app. The same scoring stack needs to serve both digitally
acquired customers and the customers our sales team brings in for underwriting, so you'll design for both
flows.
On the growth side, you'll optimize how we spend marketing budget to acquire those customers — ad
targeting, funnel conversion, channel attribution, and the experiments that tell us which levers actually move
CAC and LTV. You'll own the loop from "who do we target" through "did they convert" through "did they
repay."
This is not a traditional data science role.
We operate in an AI-native environment, where the team leverages Claude Code, Codex, and other LLMbased systems to accelerate analysis, generate model code, build pipelines, and iterate quickly. As a result,
the role increasingly focuses on:
  • Defining clear problem specs that AI agents can execute against
  • Reviewing, validating, and hardening AI-generated analyses and code
  • Building feedback loops that let models improve automatically with new data
  • Setting the quality bar — what "good" looks like for a model in production
  • You'll collaborate closely with Engineering, Product, and the Sales team to ship models that affect lending
  • decisions on day one. This is a highly technical, in-office role in Nairobi. You'll join a small, high-performing
  • team where ownership is expected and impact is immediate.
Responsibilities
Credit & underwriting
  • Build, deploy, and continuously improve credit scoring models using bank statement data, payment
  • histories, CRB pulls, and in-app behavioural signals
  • Design automated underwriting flows that serve both digitally acquired customers and salessourced applications
  • Implement model retraining pipelines so scoring improves as we accumulate repayment outcomess - not as a quarterly project
  • Own model performance monitoring, drift detection, and automated alerting
  • Partner with Risk and Operations on policy thresholds, override rules, and the human-in-the-loop processes that wrap the models
Growth & marketing analytics
  • Optimize ad targeting across our acquisition channels — audience selection, bid strategy, creative performance, lookalike construction
  • Instrument and analyze the acquisition funnel end-to-end (impression → click → install → KYC → first loan → repayment)
  • Design and run A/B tests on acquisition and product experiences; build the experimentation infrastructure so the team can run tests without you
  • Build attribution and LTV/CAC models that the business can actually act on Cross-cutting
  • Write clear technical specs that AI-assisted workflows can execute against
  • Use AI tools (Claude Code, Codex, etc.) to move 10x faster on data wrangling, feature engineering, and analysis — while rigorously validating outputs
  • Extend our data platform with new sources (third-party APIs, CRB providers, payment rails) when a model needs them
  • Process, clean, and verify data integrity — especially for anything that touches lending decisions
  • Present findings clearly to non-technical stakeholders; defend recommendations with data
Skills and Qualifications
  • 4+ years of hands-on data science / applied ML in production environments
  • Strong Python (pandas, scikit-learn, numpy) and SQL — you can go from raw data to deployed
  • model without waiting on engineering
  • Deep practical experience with classifier and regression modeling — feature engineering, model
  • selection, calibration, evaluation under class imbalance
  • Solid applied statistics: hypothesis testing, regression, experimental design, dealing with selection
  • bias and censored outcomes
  • Experience working with messy real-world financial data (transactional data, bank statements,
  • payments, credit bureau data) — or strong evidence you can ramp on it quickly
  • Comfort with relational databases (Postgres / MySQL) and modern data tools
  • Strong written and verbal communication — you can explain a model's behaviour to a credit officer,
  • a marketer, and an engineer in the same week
Highly preferred
  • Credit scoring or fraud modeling experience, especially in emerging markets or thin-file populations
  • Marketing analytics / growth experimentation experience — ad platforms (Meta, Google), attribution,
  • funnel analysis
  • Production ML experience: deployment, monitoring, retraining pipelines
  • AI-Native Data Science (increasingly important)
  • Experience using AI coding tools (Claude Code, Codex, GitHub Copilot, etc.) in daily analysis and
  • modeling workflows
  • Ability to write clear, structured technical specs and prompts that produce reliable code and
  • analyses
  • Strong review skills — you can spot the subtle bugs in AI-generated SQL, features, and pipelines
  • that pass tests but produce wrong answers
  • Understanding of failure modes in AI-assisted analysis (leakage, hallucinated joins, plausible-butwrong feature definitions)

Bonus
  • Experience with payments, lending, or fintech in Kenya / Africa specifically
  • Familiarity with CRB data (Metropol, TransUnion, CreditInfo) and Kenyan banking data formats
  • Experience deploying LLM-based features into production data products
  • What We're Really Looking For
  • Data scientists who think in systems and feedback loops, not one-off models
  • People who can leverage AI to ship 10x faster without losing rigour
  • Builders who own a problem from data → model → deployment → monitoring
  • Pragmatic operators who would rather ship a working v1 this month than a perfect v3 next year

Work Status
Valid work authorization for Kenya.
Umba is proud to be an Equal Opportunity employer. All qualified applicants will receive consideration for
employment without regard to sex, gender identity, sexual orientation, race, color, religion, national origin,
disability, protected veteran status, age, or any other characteristic protected by law. We also consider
qualified applicants regardless of criminal histories, consistent with legal requirements. If you have a
disability or special need that requires accommodation, please let us know.

Skills Required

  • 4+ years of hands-on data science / applied ML in production environments
  • Strong Python (pandas, scikit-learn, numpy) and SQL skills
  • Deep practical experience with classifier and regression modeling
  • Experience working with messy real-world financial data
  • Strong written and verbal communication skills
  • Production ML experience: deployment, monitoring, retraining pipelines
  • Credit scoring or fraud modeling experience
  • Marketing analytics / growth experimentation experience
Am I A Good Fit?
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The Company
HQ: San Francisco, CA
120 Employees
Year Founded: 2019

What We Do

Umba is an African digital bank, offering bank accounts and financial services to our customers. We provide an ecosystem of connected financial services that allows the customer complete control of their finances all in one App. At Umba, we believe in the power of financial inclusion to drive economic growth. As a leading digital bank, we are committed to providing innovative solutions that empower both employers and employees to achieve financial stability and reach their full potential. Umba launched in Nigeria in January 2021, and in Kenya in April 2023, via the acquisition of an existing Microfinance bank. Our digital platform offers seamless access to a wide range of banking services, including account management, payments, loans, savings, and more. We leverage technology and data-driven insights to streamline processes and make banking faster, smarter, and more convenient than ever before. But we are not just a bank. We are a partner, a trusted advisor, and a catalyst for growth. Our team of talented professionals is passionate about our mission, and we work tirelessly to deliver personalized service and tailored solutions to our customers. With our extensive network and expertise, we are well-positioned to support our customers at every stage of their journey. Join us at Umba, and be part of a dynamic team that is reshaping the future of banking. Together, we can unlock the potential of businesses, transform lives, and drive sustainable economic development. Connect with us on LinkedIn, Facebook, and Instagram to learn more about our innovative solutions and the exciting opportunities that await you at Umba.

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