Junior Quant / Scorecard Analyst at The Concept Group

Job Overview

Location
Lagos, Lagos
Job Type
Full Time
Date Posted
7 days ago

Additional Details

Job ID
150240
Job Views
30

Job Description






Job Purpose




  • The Junior Quant / Scorecard Analyst supports the development, monitoring, and maintenance of credit scoring models and quantitative risk tools.

  • The role focuses on data preparation, modelling assistance, portfolio analytics, and documentation to enhance credit decision-making and improve portfolio performance across retail, SME, MFB lending, and fintech lending products.



Key Responsibilities

Data Preparation & Management:




  • Extract, clean, and organize datasets for credit modelling and analysis.

  • Work with data engineering and MIS teams to ensure data integrity and completeness.

  • Conduct data quality checks and produce summary statistics.



Scorecard & Model Development Support:




  • Assist seniors in building credit scoring models (application, behavior, collection).

  • Perform exploratory data analysis (EDA) and variable selection.

  • Support model development using logistic regression, decision trees, and basic ML techniques.

  • Prepare model datasets, feature engineering, and transformations.



Model Monitoring & Performance Tracking:




  • Monitor model KPIs such as Gini, KS, AUC, PSI, and score distribution.

  • Track override patterns, approval rates, and model drift.

  • Prepare monthly and quarterly model performance reports.



Portfolio Analytics:




  • Assist with analysis of delinquency trends, roll rates, NPL ratios, and credit losses.

  • Support cohort/vintage analysis for MFB and money lending products.

  • Provide insights to help refine underwriting policies and risk strategies.



IFRS 9 & Regulatory Support (Basic):




  • Support model documentation and basic calculations for expected credit loss (ECL).

  • Assist with regulatory submissions related to credit scoring or risk models.

  • Maintain compliance with data and modelling standards.



Documentation & Reporting:




  • Prepare model documentation (methodology, testing, assumptions).

  • Draft monitoring reports and dashboards for internal users.

  • Ensure all development steps follow model governance rules.



Collaboration:




  • Work with underwriters, credit analysts, and product teams to understand business requirements.

  • Provide quantitative insights for new product development and risk appetite changes.

  • Support Senior Modellers and Analysts in project execution.



Key Performance Indicators (KPIs)

Model Development & Support:




  • Accuracy and timeliness of data preparation for modelling.

  • Contribution to scorecard development (quality of EDA, feature selection, model testing).

  • Reduction in model development timelines.



Model Performance Monitoring:




  • Timely submission of monthly/quarterly monitoring reports.

  • Accuracy of model KPIs (AUC/Gini/KS/PSI) tracking.

  • Early identification of model drift or performance issues.



Data Quality & Governance:




  • Reduction in errors in modelling datasets.

  • Compliance with data governance and documentation standards.

  • Number of data quality issues detected and resolved.



Portfolio Impact:




  • Improvements in approval rate or bad rate linked to scorecard refinements.

  • Accuracy of risk segmentation insights.

  • Effectiveness of analytical support for credit policy changes.



Efficiency & Automation:




  • Number of automated scripts/reports developed (e.g., Python, SQL).

  • Reduction in manual reporting effort.

  • Improvement in turnaround time for analytical tasks.



Collaboration & Stakeholder Support:




  • Feedback from senior modellers, underwriters, and product teams.

  • Timeliness and quality of ad-hoc analysis delivered.

  • Contribution to cross-functional risk initiatives.



Qualifications & Experience




  • Bachelor’s Degree in Statistics, Mathematics, Data Science, Computer Science, Economics, Engineering, or similar.

  • 1 - 3 years of experience in credit analytics, data analysis, quantitative modelling, or related fields.

  • Knowledge of Python, R, or SAS (basic to intermediate).

  • Ability to write SQL queries and work with structured datasets.

  • Understanding of credit scoring, logistic regression, and model validation concepts.

  • Experience in banking, microfinance, or digital lending is an advantage.



Skills & Competencies:




  • Strong quantitative and analytical skills.

  • Basic knowledge of credit risk metrics and scorecard frameworks.

  • Proficiency in Python/R and SQL for modelling and analysis.

  • Ability to work with large datasets and identify patterns.

  • Good communication and documentation skills.

  • Willingness to learn advanced modelling and machine learning techniques.

  • Detail-oriented and committed to data accuracy.



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