Posted on: 02/04/2026
Job Title : Head of Data Science
Experience : 7+ years
Location : Gurgaon
Reporting : Top Management (CXO Level)
Role Overview :
We are looking for a visionary and hands-on Head of Data Science- and AI with at least 6 years of experience to lead our data strategy and analytics initiatives. In this pivotal role, you will take full ownership of the end-to-end technology stack, driving a data-analytics-driven business roadmap that delivers tangible ROI. You will not only guide high-level strategy but also remain hands-on in model design and deployment, ensuring our data capabilities directly empower executive decision-making.
If you are passionate about leveraging AI and Data to transform financial services, we invite you to lead our data transformation journey.
Key Responsibilities :
Strategic Leadership & Roadmap :
- End-to-End Tech Stack Ownership : Define, own, and evolve the complete data science and analytics technology stack to ensure scalability and performance.
- Business Roadmap & ROI : Develop and execute a data analytics-driven business roadmap, ensuring every initiative is aligned with organizational goals and delivers measurable Return on Investment (ROI).
- Executive Decision Support : Create and present high-impact executive decision packs, providing actionable insights that drive key business strategies.
Model Design & Deployment (Hands-on) :
- Hands-on Development : Lead by example with hands-on involvement in AI modeling, machine learning model design, and algorithm development using Python.
- Deployment & Ops : Oversee and execute the deployment of models into production environments, ensuring reliability, scalability, and seamless integration with existing systems.
- Leverage expert-level knowledge of Google Cloud Agentic AI, Vertex AI and BigQuery to build advanced predictive models and data pipelines.
- Develop business dashboards for various sales channels and drive data driven decision making to improve sales and reduce costs.
Governance & Quality :
- Data Governance : Establish and enforce robust data governance frameworks, ensuring data accuracy, security, consistency, and compliance across the organization.
- Best Practices : Champion best practices in coding, testing, and documentation to build a world-class data engineering culture.
Collaboration & Innovation :
- Work closely with Product, Engineering, and Business leadership to identify opportunities for AI/ML intervention.
- Stay ahead of industry trends in AI, Generative AI, and financial modeling to keep Bajaj Capital at the forefront of innovation.
Must-Have Skills & Experience :
Experience :
- At least 7 years of industry experience in Data Science, Machine Learning, or a related field.
- Proven track record of applying AI and leading data science teams or initiatives that resulted in significant business impact.
Technical Proficiency :
- Core Languages : Proficiency in Python is mandatory, with strong capabilities in libraries such as Pandas, NumPy, Scikit-learn, TensorFlow/PyTorch.
- Cloud Data Stack : Expert-level command of Google Cloud Platform (GCP), specifically Agentic AI, Vertex AI and BigQuery.
- AI & Analytics Stack : Deep understanding of the modern AI and Data Analytics stack, including data warehousing, ETL/ELT pipelines, and MLOps.
- Visualization : PowerBI in combination with custom web/mobile applications.
Leadership & Soft Skills :
- Ability to translate complex technical concepts into clear business value for stakeholders.
- Strong ownership mindset with the ability to manage end-to-end project lifecycles.
- Experience in creating governance structures and executive-level reporting.
Good-to-Have / Plus :
- Domain Expertise : Prior experience in the BFSI domain (Wealth Management, Insurance, Mutual Funds, or Fintech).
- Certifications : Google Professional Data Engineer or Google Professional Machine Learning Engineer certifications.
- Advanced AI : Experience with Generative AI (LLMs), RAG architectures, and real-time analytics.
Education :
- B.Tech / B.E. / MCA / M.Sc or equivalent in Computer Science, Statistics, Mathematics, or Data Science.
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