Chief Risk and Data Officer

Client of Be-Exec

Employer Active

Posted on 23 Mar

Experience

5 - 10 Years

Job Location

Riyadh - Saudi Arabia

Education

Bachelor of Science(Computers)

Nationality

Any Nationality

Gender

Not Mentioned

Vacancy

1 Vacancy

Job Description

Roles & Responsibilities

This leader will design and scale a fully auditable, real-time, data-driven lending engine capable of operating in emerging markets with initially minimal data and gradually expanding to rich alternative-data environments.

Key Responsibilities

Risk & Decision Science Leadership

  • Build end-to-end credit-decision engines for thin-file and micro-loan lending.
  • Develop dynamic risk-based pricing, approval strategies, and behavioural scorecards.
  • Design and maintain real-time PD/LGD models, portfolio-risk dashboards, and EWS triggers.
  • Manage the full model-risk governance cycle, including documentation and audit trails.
  • Align Product, Engineering, Data and Collections teams around unified risk limits and target ROE.
  • Oversee portfolio monitoring, NPL caps, loss forecasting and scenario modelling.

Data & Architecture Ownership

  • Define and deliver the company’s real-time data architecture:
    • Streaming ELT data lake/warehouse feature store ML-ops pipeline
  • Make strategic architectural choices (e.g., Kafka vs. Kinesis, Delta vs. Iceberg).
  • Ensure robust data quality, lineage and metadata management using tools such as:
    • Great Expectations, DataHub, Collibra
  • Build and scale company-wide BI, reporting, KPI frameworks and data literacy programs.
  • Support engineering in building scalable, compliant microservices for credit and data operations.

Leadership & Team Management

  • Build and lead multi-disciplinary teams: risk analysts, data engineers, ML engineers, BI analysts.
  • Mentor future leaders and drive a high-performance, safety-first, analytically rigorous culture.
  • Ensure strong cross-functional collaboration across Product, Engineering, Finance, Collections and Operations.

Requirements

Experience

  • Hand-on experience building credit-risk engines, pricing models and data pipelines for thin-file or micro-loan lending.
  • Ability to work initially with minimal data (phone + ID only) and scale into rich alt-data ecosystems (device, telco, behavioural, psychometric, open banking).
  • Commercial instinct to balance conversion rate, data cost and decision quality, managing approval-rate vs. portfolio-yield trade-offs.
  • Experience in regulated environments with a clean compliance reputation.
  • Hand-on coding in Python or R, strong SQL, and understanding of ML-ops latency/production constraints.
  • Demonstrated experience presenting frameworks to regulators and auditors.

Skills & Competencies

  • Deep understanding of portfolio management: vintage curves, NPL, ROE, collections strategy.
  • Strong architectural judgement: streaming, storage formats, orchestration, ML-ops.
  • Ability to link dashboards, models and KPIs directly to commercial OKRs.
  • Strong cross-functional communication and executive-level storytelling.
  • Ability to build scalable teams in fast-moving, ambiguous environments.

Mindset

  • Hand-on, pragmatic, commercially minded.
  • Scientific but not academic — every model tied to P&L.
  • Zero tolerance for compliance shortcuts.
  • High ownership, high integrity, high urgency.

Desired Candidate Profile

  • Hand-on experience building credit-risk engines, pricing models and data pipelines for thin-file or micro-loan lending.
  • Ability to work initially with minimal data (phone + ID only) and scale into rich alt-data ecosystems (device, telco, behavioural, psychometric, open banking).
  • Commercial instinct to balance conversion rate, data cost and decision quality, managing approval-rate vs. portfolio-yield trade-offs.
  • Experience in regulated environments with a clean compliance reputation.
  • Hand-on coding in Python or R, strong SQL, and understanding of ML-ops latency/production constraints.
  • Demonstrated experience presenting frameworks to regulators and auditors.

Company Industry

Department / Functional Area

Keywords

  • Chief Risk And Data Officer

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