Head of AI and Automation
2026-09-10T15:22:05+00:00
Central Bank of Kenya
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FULL_TIME
Nairobi
Nairobi
00100
Kenya
Finance
Management, Computer & IT, Civil & Government, Science & Engineering, Business Operations
2026-09-21T17:00:00+00:00
8
Job Summary
The role holder provides strategic leadership for CBK’s Artificial Intelligence, Machine Learning, and Intelligent Automation initiatives. Responsible for overseeing the development and deployment of AI models, advanced analytics, and reporting automation, the leader drives strategic use cases to enhance operational efficiency, optimize decision-making, and govern model risk management across the Bank.
Key Responsibilities
Strategic Leadership & Delivery: Lead the AI and Automations pillar—encompassing Data Science, MLOps, and Intelligent Automation—while executing use cases aligned with Implementation Matrix priorities and managing associated research/development budgets.
AI Governance & Compliance: Establish robust AI governance frameworks, model risk management practices, and ethical AI principles. Ensure all solutions meet strict regulatory, ethical, and technical standards, incorporating international frameworks like ISO 42001, NIST, or the EU AI Act.
Innovation & Lifecycle Management: Lead the development of AI proofs-of-concept (POCs) and oversee their transition to secure production environments, managing the full AI lifecycle (monitoring, retraining, and optimization).
Ecosystem & Partnerships: Build strategic partnerships with universities, research institutions, and technology vendors, representing the Centralized Data Office in external engagements and fostering a culture of responsible experimentation.
Qualifications
Bachelor’s and Master’s Degrees in a quantitative or technical field (e.g., Computer Science, Data Science, Artificial Intelligence, Machine Learning, Engineering, Mathematics, Statistics, or Information Systems).
PhD in Artificial Intelligence, Machine Learning, Data Science, Intelligent Automation, or a related discipline is an added advantage.
Experience & Technical Competencies
General Experience: Minimum of 10 years in AI, Machine Learning, Data Science, and Intelligent Automation, including at least 5 years leading enterprise solution delivery and 3 years managing multi-disciplinary technical teams within highly regulated environments (financial services, central banking, telecom, or government).
Technical Expertise: Deep knowledge of classic AI, Deep Learning, NLP, Large Language Models (LLMs), Generative AI, AI Agents, RAG, and intelligent automation platforms (RPA, Power Automate, UiPath).
Architecture & Cloud: Hands-on experience designing enterprise AI architectures, integrating APIs and cloud-based AI platforms (Azure AI/OpenAI, Databricks, AWS, Google AI), and implementing controls for model explainability, security, and PII compliance.
- Lead the AI and Automations pillar—encompassing Data Science, MLOps, and Intelligent Automation—while executing use cases aligned with Implementation Matrix priorities and managing associated research/development budgets.
- Establish robust AI governance frameworks, model risk management practices, and ethical AI principles. Ensure all solutions meet strict regulatory, ethical, and technical standards, incorporating international frameworks like ISO 42001, NIST, or the EU AI Act.
- Lead the development of AI proofs-of-concept (POCs) and oversee their transition to secure production environments, managing the full AI lifecycle (monitoring, retraining, and optimization).
- Build strategic partnerships with universities, research institutions, and technology vendors, representing the Centralized Data Office in external engagements and fostering a culture of responsible experimentation.
- AI Governance
- Model Risk Management
- Ethical AI Principles
- AI Lifecycle Management
- Partnership Building
- Classic AI
- Deep Learning
- NLP
- Large Language Models (LLMs)
- Generative AI
- AI Agents
- RAG
- RPA
- Power Automate
- UiPath
- Enterprise AI Architecture Design
- API Integration
- Cloud-based AI Platforms (Azure AI/OpenAI, Databricks, AWS, Google AI)
- Model Explainability
- AI Security
- PII Compliance
- Bachelor’s and Master’s Degrees in a quantitative or technical field (e.g., Computer Science, Data Science, Artificial Intelligence, Machine Learning, Engineering, Mathematics, Statistics, or Information Systems).
- PhD in Artificial Intelligence, Machine Learning, Data Science, Intelligent Automation, or a related discipline is an added advantage.
JOB-6aa2cb1d24228
Vacancy title:
Head of AI and Automation
[Type: FULL_TIME, Industry: Finance, Category: Management, Computer & IT, Civil & Government, Science & Engineering, Business Operations]
Jobs at:
Central Bank of Kenya
Deadline of this Job:
Monday, September 21 2026
Duty Station:
Nairobi | Nairobi
Summary
Date Posted: Thursday, September 10 2026, Base Salary: Not Disclosed
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JOB DETAILS:
Job Summary
The role holder provides strategic leadership for CBK’s Artificial Intelligence, Machine Learning, and Intelligent Automation initiatives. Responsible for overseeing the development and deployment of AI models, advanced analytics, and reporting automation, the leader drives strategic use cases to enhance operational efficiency, optimize decision-making, and govern model risk management across the Bank.
Key Responsibilities
Strategic Leadership & Delivery: Lead the AI and Automations pillar—encompassing Data Science, MLOps, and Intelligent Automation—while executing use cases aligned with Implementation Matrix priorities and managing associated research/development budgets.
AI Governance & Compliance: Establish robust AI governance frameworks, model risk management practices, and ethical AI principles. Ensure all solutions meet strict regulatory, ethical, and technical standards, incorporating international frameworks like ISO 42001, NIST, or the EU AI Act.
Innovation & Lifecycle Management: Lead the development of AI proofs-of-concept (POCs) and oversee their transition to secure production environments, managing the full AI lifecycle (monitoring, retraining, and optimization).
Ecosystem & Partnerships: Build strategic partnerships with universities, research institutions, and technology vendors, representing the Centralized Data Office in external engagements and fostering a culture of responsible experimentation.
Qualifications
Bachelor’s and Master’s Degrees in a quantitative or technical field (e.g., Computer Science, Data Science, Artificial Intelligence, Machine Learning, Engineering, Mathematics, Statistics, or Information Systems).
PhD in Artificial Intelligence, Machine Learning, Data Science, Intelligent Automation, or a related discipline is an added advantage.
Experience & Technical Competencies
General Experience: Minimum of 10 years in AI, Machine Learning, Data Science, and Intelligent Automation, including at least 5 years leading enterprise solution delivery and 3 years managing multi-disciplinary technical teams within highly regulated environments (financial services, central banking, telecom, or government).
Technical Expertise: Deep knowledge of classic AI, Deep Learning, NLP, Large Language Models (LLMs), Generative AI, AI Agents, RAG, and intelligent automation platforms (RPA, Power Automate, UiPath).
Architecture & Cloud: Hands-on experience designing enterprise AI architectures, integrating APIs and cloud-based AI platforms (Azure AI/OpenAI, Databricks, AWS, Google AI), and implementing controls for model explainability, security, and PII compliance.
Work Hours: 8
Experience in Months: 120
Level of Education: postgraduate degree
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