
Assistant Vice President - Data Science
About the role
C12: Lead AI Engineer
Job Title: Lead AI Engineer** Job Code:** TBD** Job Family Group:** Decision Management** Job Family:** Specialized Analytics (Data Science/Computational Statistics)** Citi Job Level:** C12** Exemption Status:** EXEMPT** Manager Level:** INDIV. CONTRIB
Job Overview
The Lead AI Engineer is a senior individual contributor and the primary technical owner for complex AI projects. This role focuses on the hands-on architecture and implementation of cutting-edge AI solutions, ensuring technical excellence and alignment with product goals.
Responsibilities
Primary Responsibilities (60%):
- Serve as the technical anchor for the development of enterprise-grade, AI-powered solutions, guiding the implementation from a technical perspective.
- Lead the hands-on implementation of novel AI solutions, particularly in autonomous agents and advanced agentic architectures (e.g., using Google ADK).
- Architect and implement advanced frameworks for Agent Ops and agentic AI governance, including evaluation suites, post-production observability, and traceability mechanisms.
Secondary Responsibilities (30%):
- Partner with product leadership to shape the AI product strategy and technical roadmap.
- Technically lead the reimagination of core business processes by designing and implementing novel AI-driven solutions.
- Collaborate cross-functionally with Technology, Model Risk Management (MRM), Legal, Compliance, and Business teams to ensure solutions are robust, compliant, and aligned with enterprise goals.
Additional Responsibilities (10%):
- Evangelize AI best practices across the organization.
- Lead the evaluation and integration of emerging AI technologies.
Leadership & Collaboration / Dual-Track Path:
- Technical Leadership (Individual Contributor Track): Focus on solving the most challenging technical problems, pioneering new AI capabilities, and acting as a subject matter expert.
- People Leadership (Manager Track): Guide and grow a team of AI engineers, balancing hands-on technical contribution with coaching, performance management, and strategic project oversight.
Qualifications
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Experience: 8–10 years of professional experience in software engineering, with a significant focus on building and deploying large-scale AI/ML systems.
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Knowledge and Skills (Required):
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Expertise in Python.
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Proven experience architecting and building complex systems using agentic frameworks (e.g., Google ADK, Lang Chain, Auto Gen).
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Deep expertise in context optimization, knowledge storage (vector databases, knowledge graphs), and Retrieval-Augmented Generation (RAG) at scale.
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Strong architectural skills in designing complex, distributed systems and scalable backend APIs.
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Expertise in defining and implementing evaluation strategies using platforms like Lang Fuse.
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Knowledge and Skills (Preferred):
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Experience building control and sandboxing systems for AI research.
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Contributions to open-source AI or cloud-native projects.
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Experience in the financial services industry.
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Deep hands-on knowledge of Kubernetes.
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Extensive experience with deep learning frameworks and MLOps principles.
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- Certifications: Advanced certifications in Gen AI , Agentic AI, cloud architecture, Kubernetes, or machine learning are a strong plus.
Education
- Bachelor's/University degree in Computer Science or a related field; Master's degree is highly preferred.
609912
------------------------------------------------------ ## Job Family Group:
Decision Management
------------------------------------------------------ ## Job Family:
Specialized Analytics (Data Science/Computational Statistics)
------------------------------------------------------ ## Time Type:
Full time
------------------------------------------------------ ## Most Relevant Skills
Please see the requirements listed above.
------------------------------------------------------ ## Other Relevant Skills
For complementary skills, please see above and/or contact the recruiter.
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