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Lead Agentic AI Engineer – VP

Job in Mississauga, Ontario, Canada
Listing for: 08763 Citi Canada Technology Services ULC
Full Time position
Listed on 2026-06-04
Job specializations:
  • Software Development
    AI Engineer, Machine Learning/ ML Engineer, Software Engineer, Cloud Engineer - Software
Job Description & How to Apply Below
Position: Lead Agentic AI Engineer – VP )

About the Role

Citi's Wholesale Technology organization is seeking an exceptional, hands-on Lead Agentic AI Engineer (VP) to design, build, and deploy cutting-edge agentic AI solutions. This role combines deep technical leadership with architectural ownership — driving adoption of LLMs, agentic workflows, and generative AI platforms to improve efficiency, automation, and risk reduction across Citi's global banking operations. You will operate with an AI-first mindset
, emphasizing rapid prototyping, MVP-driven development, and iterative delivery of production-grade AI capabilities.

Key Responsibilities

Agentic AI Design & Engineering

  • Lead end-to-end design, development, and deployment of large-scale agentic AI solutions using Google Agent Development Kit (ADK) and frameworks such as Lang Chain, Lang Graph
  • Architect advanced multi-agent systems (perception, reasoning, planning, execution) integrating multiple LLM providers (OpenAI, Anthropic, Google Gemini).
  • Build AI-powered capabilities using Google Gemini, Vertex AI, Agent Development Kit (ADK), Google A2UI
    , vector databases, RAG pipelines, semantic search, and advanced prompt and context management.
  • Engineer autonomous agents incorporating planning, tool usage, memory management, and multi-step reasoning patterns.
  • Full-Stack AI & Backend Engineering

  • Develop scalable, high-performance backend services in Python (FastAPI, asyncio) with resilient APIs, event-driven designs, and microservices architectures.
  • Build and maintain robust data pipelines working with SQL (Oracle, Postgre

    SQL) and No

    SQL (Mongo

    DB) databases.
  • Implement secure REST APIs and agent interfaces with strong authentication, authorization (OAuth), and encryption best practices.
  • Optimize AI agent performance, latency, and cost through prompt optimization, caching strategies, and vector index tuning.
  • Architecture, Strategy & Best Practices

  • Provide architectural guidance for Next-Generation AI (NGAI) initiatives, ensuring adherence to CTO guidelines and platform standards.
  • Develop and maintain a strategic roadmap for generative AI adoption
    , evaluating new models, techniques, and platforms.
  • Establish and govern best practices for the full AI development lifecycle: prompt engineering, model evaluation, MLOps, and data management.
  • CI/CD, MLOps & Observability

  • Drive CI/CD practices integrating automated testing, agent evaluation, code quality gates, containerization, and cloud-native deployment pipelines.
  • Automate AI model quality, performance testing, and MLOps build processing in the CI/CD pipeline.
  • Leadership, Mentorship & Collaboration

  • Mentor AI/ML Engineers on best practices in agentic AI development, Google ADK, and advanced AI technologies.
  • Champion MVP-driven delivery
    , rapid iteration, and A/B experimentation to achieve fast time-to-value.
  • Collaborate with business units to identify high-impact use cases and ensure AI solutions meet business goals.
  • Required Qualifications & Skills

    Experience

  • 6–10 years of relevant experience in an AI/ML development role, Applications Development, or Systems Analysis, with a substantial and demonstrated focus on Python technologies.
  • Minimum 2+ years of professional experience in software development with a focus on AI, prompt engineering, machine learning, and/or agentic AI systems.
  • Proven track record as a lead developer for agentic flow design, prompt design, and testing of autonomous AI systems with deep expertise in Google ADK
    .
  • Subject Matter Expert (SME) in at least one area of Applications Development, particularly Python application development (Django, Flask, FastAPI).
  • Programming

  • Python (expert-level):
    FastAPI, Django, Flask, asyncio, PySpark — strong fundamentals in algorithms, data structures, concurrency, and design patterns.
  • Proficient in Java (Spring Boot, Spring Cloud), JavaScript/TypeScript (React, , , and SQL/data modeling.
  • Experience across AWS, Azure, and GCP with Docker, Kubernetes, and CI/CD pipelines. Proficient in MLOps practices including model versioning, deployment, and lifecycle management
  • Strong foundation in secure API design, microservices, event-driven architecture, and distributed systems with expertise in testing, Git workflows, and performance…
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