Decision Scientist at Capitec Bank

Company:

Capitec Bank

Capitec Bank

Industry: Banking / Financial Services

Deadline: Not specified

Job Type: Full Time

Experience: 5 years

Location: Gauteng

Province:

Field: Data, Business Analysis and AI , ICT / Computer

Purpose Statement

  • To solve business problems, create new products and services, and improve processes through using the disciplines of data science, quantitative (financial) analysis, and traditional scoring techniques – translating active business data into usable strategic information.
  • To look at ways of analysing and optimising data as it relates to a specific business area; framing data analysis in terms of the decision-making process for questions or business problems posed by a stakeholder. 
  • To help build and deliver Capitec’s AI strategy, enabling data-led and improved business decision making.
  • To design quantitative advanced analytics models that answer business questions and/or discover opportunities for improvement, increased revenue, or reduced costs.

Education (Minimum)

  • Honours Degree in Mathematics or Statistics

Education (Ideal or Preferred)

  • Masters Degree in Mathematics or Statistics

Experience and Knowledge
Minimum Experience and Knowledge:

  • Length of experience required is also conditional on qualifications obtained 
  • Statistical (predictive and classification) model development and deployment principles and techniques; including traditional scoring (logistic regression with binning and missing value replacement, e.g., reject inference), Machine Learning (neural networks, SVM, random forests, etc.), and quantitative analysis (time value of money, etc.)
  • At least one Machine Learning language (e.g., Python or SAS Viya)
  • Business analysis and requirements gathering
  • General business know-how (e.g., risk, compliance, operations – such as NCR, POPIA, and SARB)
  • Cloud environments (e.g., Azure, AWS, and large relational databases)
  • Functional business area (e.g., Credit) environment knowledge and experience
  • Developing scorecards from scratch
  • Underlying theory and application of machine learning models
  • Best practices for decision science (such as reusability, reproducibility, continuous monitoring, etc.)

Ideal Experience and Knowledge:

  • Over 5 years’ experience in an analytical science role
  • Working with multiple teams to deliver predictive models into a production environment
  • Financial sector
  • Credit environment / industry (Credit cycle)
  • Bank decision science lifecycle

Skills

  • Numerical Reasoning skills
  • Researching skills
  • Analytical Skills
  • Problem solving skills
  • Decision making skills
  • Planning, organising and coordination skills
  • Attention to Detail
  • Presentation Skills
  • Communications Skills
  • Interpersonal & Relationship management Skills



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