Credit Risk Modelling Data Scientist

Hala

Riyadh

On-site

SAR 300,000 - 520,000

Full time

14 days+

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Job summary

HALA Financing is seeking an Actuarial Data Scientist to advance our credit engine, risk models, and portfolio monitoring. You will predict probability of default, enhance credit decisioning, and build data-driven models to support responsible SME growth.

The ideal candidate blends actuarial thinking with credit risk modelling, ML, and strong business judgment, collaborating with Credit, Risk, Product, and Data Engineering to turn insights into actionable strategies balancing growth with

Qualifications

  • Bachelor’s degree in a quantitative field; Master’s preferred.
  • 3–6 years in actuarial analytics, credit risk, or fintech.
  • Strong understanding of PD, credit scoring, portfolio risk, delinquency, loss forecasting, and cohort analysis.
  • Strong Python and SQL skills.
  • Experience with statistical modelling and ML methods.
  • Ability to translate analyses into business recommendations.
  • Strong communication and stakeholder management.

Responsibilities

  • Build, validate, and improve PD and credit scoring models.
  • Analyze delinquency trends, vintage curves, and loss patterns.
  • Develop early-warning indicators for delays and defaults.
  • Monitor portfolio performance and report risk metrics.
  • Support management and investor risk reporting.
  • Collaborate with Data Engineering to improve data quality.

Skills

Python
SQL
Credit risk modelling
Statistical modelling
Machine learning
Communication skills
Stakeholder management

Education

Bachelor's degree in Actuarial Science, Statistics, Mathematics, Data Science, Computer Science, Engineering, Finance, or related field
Master’s degree preferred

Job description

Who Are We

HALA is a leading fintech player in the MENAP region that aims to redefine financial services and build the future bank of SMEs. HALA aims at empowering SMEs to start, run, and grow their businesses by providing them with cutting-edge financial and technological tools.

HALA currently holds multiple entities in UAE, Saudi Arabia and Egypt (including HALA Payments and HALA Logistics) and offers solutions that enable merchants to digitize their payments as well as manage their sales and operations.

Founded in 2017, HALA is currently licensed by the Saudi Arabian Central Bank.

Credit Risk Modelling Data Scientist

Company: Hala Financing

Team: Data & Business Intelligence

Location: Riyadh, Saudi Arabia

Employment Type: Full-time

Role Summary

Hala Financing is looking for an Actuarial Data Scientist to join the Data team and support the development of our credit engine, risk models, and portfolio monitoring capabilities.

The role will focus on predicting probability of default, improving credit decisioning, enhancing risk segmentation, and building data-driven models that support responsible growth in SME lending. The ideal candidate combines actuarial thinking, credit risk modelling, machine learning, and strong business judgment.

Key Responsibilities
Credit Risk Modelling
  • Build, validate, and improve models for probability of default, credit scoring, affordability, delinquency prediction, and customer risk segmentation.
  • Analyze historical repayment behavior, first-payment failure, delinquency trends, vintage curves, and default patterns.
  • Support the enhancement of Hala Financing’s credit engine by identifying stronger predictive variables and decision rules.
  • Develop early-warning indicators to detect customers likely to delay, default, or underperform.
Portfolio Analytics
  • Monitor portfolio performance across cohorts, channels, customer segments, loan products, tenure, ticket size, and repayment behavior.
  • Build dashboards and analytical frameworks to track approval quality, disbursement performance, default rates, roll rates, collections performance, and portfolio risk.
  • Run scenario analysis and stress testing to assess the impact of growth, pricing, approval policy, and macroeconomic changes on portfolio performance.
  • Support management reporting for credit performance, investor reporting, and internal risk committees.
Data Science & Machine Learning
  • Use statistical and machine learning techniques to improve credit decisioning and default prediction.
  • Work with structured and alternative data sources, including transaction data, merchant behavior, repayment history, business activity, and external data where available.
  • Design experiments and champion/challenger tests to evaluate credit policy changes.
  • Partner with Data Engineering to improve data quality, feature availability, model monitoring, and automation.
Business Partnership
  • Work closely with Credit, Risk, Product, Collections, Finance, and Business teams to translate business questions into analytical solutions.
  • Provide clear recommendations on credit policy, approval rules, risk appetite, and portfolio growth.
  • Help balance growth, profitability, and risk by turning data insights into practical business actions.
Required Qualifications
  • Bachelor’s degree in Actuarial Science, Statistics, Mathematics, Data Science, Computer Science, Engineering, Finance, or a related quantitative field; Master’s degree preferred.
  • 3–6 years of experience in actuarial analytics, credit risk, lending analytics, banking, fintech, insurance, or financial modelling.
  • Strong understanding of probability of default, credit scoring, portfolio risk, delinquency, loss forecasting, and cohort/vintage analysis.
  • Strong skills in Python and SQL.
  • Experience with statistical modelling, machine learning, regression, classification models, decision trees, gradient boosting, model validation, and performance monitoring.
  • Ability to translate complex analytical findings into simple business recommendations.
  • Strong communication skills and ability to work with both technical and non-technical stakeholders.
Key Success Measures
  • Improved accuracy of default prediction and credit risk segmentation.
  • Reduced first-payment failure and early delinquency rates.
  • Stronger credit engine decisioning and approval quality.
  • Clear portfolio monitoring and early-warning indicators.
  • Better balance between loan growth, risk, profitability, and capital efficiency.
What We Offer You

We believe you will love working at HALA!

  • We have an inclusive and diverse culture that encourages innovation and flexibility in remote, in-office, and hybrid work setups.
  • We offer highly competitive compensation packages, including the potential for shares.
  • We prioritize personal development and offer regular training and an annual learning stipend to tackle new challenges and grow your career in a hyper-growth environment.
  • Join a talented team of over 30 nationalities working in 7 countries and gain valuable experience in an exciting industry.
  • We offer autonomy, mentoring, and challenging goals that create incredible opportunities for both you and the company.
  • You will be given a lot of responsibility and trust. We believe that the best results come when the people responsible for a function are given the freedom to do what they think is best.
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