Quantitative Analyst

Pepkor Lifestyle · Johannesburg, Gauteng

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Job Purpose

  • The core purpose of this role is to build predictive models that will enable accurate business decision-making in the Credit Analytics department.

Key Responsibilities

  • Model Data Preparation: Select and prepare relevant data, define and obtain agreement on a model's unique outputs, and motivate approval of data before model development commences.
  • Build Statistical Models: Conduct required analytics and validations, and motivate for approval at the model technical committee meeting.
  • Manage Development: Create Originations system business requirement documentation, oversee system testing, and drive change management for Originations policies, procedures, and processes.
  • Define Strategy: Develop and implement metrics to measure the impact of Originations strategy, analyze Return on Investment ROI, and collaborate with the team to optimize solutions.
  • Risk Monitoring & Controls: Design exception reports to highlight policy gaps and implement appropriate system validations to prevent data manipulation.
  • Bureau and Industry Analytics: Obtain necessary analysis to identify opportunities, highlight threats, and report on any identified risks.
  • Model Implementation: Engage with key stakeholders to ensure model coding aligns with technical specifications, complete change request documentation, and participate in pre- and post-implementation testing.
  • Monitoring & Calibration: Monitor the effectiveness of implemented models, drive successful Champion Challenger scenarios, and track the operational efficiency and health levels of all scorecards on a regular basis.
  • Self-Management & Teamwork: Maintain high standards of professionalism, apply organizational knowledge to achieve results, and show commitment to teamwork.

Knowledge

  • Knowledge of credit risk best practice and methodologies.
  • Knowledge of collections, credit granting, and risk methodologies, processes, and systems.
  • Knowledge of best practice scorecard development.
  • Understanding of relevant legislation, including the NCA, Debt Collection Act, and CPA.
  • Knowledge of SAS and Machine Learning.

Skills

  • Risk Management.
  • Information processing.
  • Written and verbal communication skills.
  • Adapting and responding to change.
  • Good analytical and problem-solving skills.

Behaviours

  • Adaptability.
  • Honesty and integrity.
  • Willingness to learn and improve.
  • Proactiveness.
  • Responsibility and Accountability.

Minimum Qualifications & Experience

  • A Bachelor's degree in Statistics, Business Mathematics, or Risk Management NQF Level 7.
  • A Post-graduate qualification is advantageous.
  • 4 to 10 years of Credit Risk experience.
  • Proven statistical model-building experience.
  • SAS experience.
  • Experience in Machine Learning ML techniques is highly advantageous.
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