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Mufgub

AI Foundational Model Engineer

Jersey City, NJ

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hirly's read of this role

Seniority
Mid level
Country
US
Work mode
On-site / unstated
First seen by hirly
27 Sept 2026

Derived automatically from the posting. Upload your resume above to see how the role scores against it.

the posting

Do you want your voice heard and your actions to count?

Discover your opportunity with Mitsubishi UFJ Financial Group (MUFG), one of the world’s leading financial groups. Across the globe, we’re 150,000 colleagues, striving to make a difference for every client, organization, and community we serve. We stand for our values, building long-term relationships, serving society, and fostering shared and sustainable growth for a better world.

With a vision to be the world’s most trusted financial group, it’s part of our culture to put people first, listen to new and diverse ideas and collaborate toward greater innovation, speed and agility. This means investing in talent, technologies, and tools that empower you to own your career.

Join MUFG, where being inspired is expected and making a meaningful impact is rewarded.

The selected colleague will work at an MUFG office or client sites four days per week and work remotely one day. A member of our recruitment team will provide more details.

Vice President – Technical AI Foundation Model Engineer

Role Summary

The VP, Technical AI Foundation Model Engineer is responsible for designing, building, deploying, and optimizing enterprise-grade AI solutions powered by foundation models, Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), and agentic AI architectures. The role translates AI concepts into secure, scalable, observable, and production-ready systems suitable for a highly regulated financial services environment.

This individual serves as the technical lead across AI engineering initiatives, partnering closely with Product Management, Enterprise Architecture, Data Engineering, Platform Engineering, Cybersecurity, Risk, and Business stakeholders to deliver transformational AI capabilities.

Key Responsibilities

Foundation Model Engineering

  • Design, build, and optimize enterprise AI solutions leveraging foundation models, LLMs, and agentic AI architectures.
  • Develop and maintain Retrieval-Augmented Generation (RAG) pipelines and semantic search capabilities.
  • Evaluate, benchmark, and recommend foundation models based on performance, cost, security, explainability, and business requirements.
  • Implement model orchestration, prompt engineering, agent frameworks, and AI workflow automation. [MUFG_AI_Ge...ck_Revised | PDF]

AI Platform & Architecture

  • Lead solution architecture for AI applications across cloud and enterprise platforms.
  • Design scalable model-serving architectures and AI APIs.
  • Optimize latency, throughput, resiliency, and cost efficiency of AI workloads.
  • Establish reusable frameworks and engineering patterns for enterprise AI delivery.

LLMOps / MLOps Leadership

  • Own end-to-end model lifecycle management, including:
  • Experimentation
  • Evaluation
  • Deployment
  • Monitoring
  • Rollback
  • Continuous improvement
  • Implement observability, telemetry, and performance monitoring across AI solutions.
  • Define engineering standards and best practices for AI development and operations

Responsible AI & Governance

  • Ensure AI systems comply with enterprise requirements for:
  • Security
  • Privacy
  • Risk Management
  • Compliance
  • Auditability
  • Implement controls for:
  • Hallucination mitigation
  • Prompt security
  • Model safety
  • Data protection
  • Human oversight

Partner with Model Risk Management, Legal, and Compliance teams to operationalize Responsible AI principles.

Technical Leadership

  • Lead technical design reviews and architecture decisions.
  • Mentor engineers and establish engineering excellence practices.
  • Guide build-vs-buy evaluations for AI platforms and vendor solutions.
  • Drive innovation through experimentation with emerging AI technologies.

Business & Stakeholder Engagement

  • Translate business requirements into scalable AI architectures.
  • Collaborate with Product Managers and business teams to define solution requirements.
  • Present technical recommendations and tradeoffs to senior leadership.
  • Support executive decision-making regarding AI platform investments.

Required Qualifications

Experience

  • 8-12+ years of experience in:
  • AI/ML Engineering
  • Software Engineering
  • Platform Engineering
  • Applied Machine Learning
  • Demonstrated experience delivering production-grade AI solutions.
  • Previous experience building enterprise-scale AI platforms or AI-enabled products.
  • Experience working in regulated industries such as banking, financial services, insurance, healthcare, or government preferred

Technical Expertise

Strong hands-on expertise in:

AI & Machine Learning

  • Foundation Models
  • Large Language Models (LLMs)
  • Agentic AI Systems
  • Retrieval-Augmented Generation (RAG)
  • Embeddings
  • Semantic Search
  • Vector Databases
  • Prompt Engineering
  • Fine-Tuning Techniques

Engineering Stack

  • Python
  • PyTorch
  • TensorFlow
  • Hugging Face
  • LangChain
  • LlamaIndex
  • Semantic Kernel

Cloud & Platform Engineering

  • AWS and/or Azure
  • Kubernetes
  • Containerized AI Workloads
  • CI/CD Pipelines
  • Model Serving Platforms
  • API Architecture

AI Operations

  • MLOps
  • LLMOps
  • Model Monitoring
  • Evaluation Frameworks
  • Performance Optimization
  • Cost Optimization

Leadership Competencies

  • Strong architecture and systems-thinking mindset.
  • Ability to influence across engineering, product, architecture, and risk organizations.
  • Executive communication skills.
  • Strong problem-solving and decision-making capability.
  • Ability to balance innovation with governance requirements.
  • Experience leading technical teams and mentoring engineers.

Success Metrics

The VP, Technical AI Foundation Model Engineer will be measured on:

Platform & Engineering Outcomes

  • Production AI deployments
  • Platform reliability and scalability
  • Performance optimization
  • Engineering productivity

AI Quality Metrics

  • Model accuracy
  • Retrieval effectiveness
  • Hallucination reduction
  • User adoption and satisfaction

Operational Metrics

  • AI platform utilization
  • Cost efficiency
  • Time-to-production
  • Technical debt reduction

Governance Metrics

  • Compliance adherence
  • Security posture
  • Responsible AI control effectiveness
  • Audit readiness

Education:

Bachelor's degree in Computer Science or a closely-related discipline, or an equivalent combination of formal education and experience

“Visa sponsorship/support is based on business needs. We do not anticipate providing visa sponsorship/support for this position.”

The typical base pay range for this role is as follows:

  • New York / New Jersey: $149-205K
  • Non–New York / New Jersey: $149-188K

depending on job-related knowledge, skills, experience and location. This role may also be eligible for certain discretionary performance-based bonus and/or incentive compensation. Additionally, our Total Rewards program provides colleagues with a competitive benefits package (in accordance with the eligibility requirements and respective terms of each) that includes comprehensive health and wellness benefits, retirement plans, educational assistance and training programs, income replacement for qualified employees with disabilities, paid maternity and parental bonding leave, and paid vacation, sick days, and holidays. For more information on our Total Rewards package, please click the link below.

Our hybrid work schedule is four days on-site and work remotely one day per week.

We will consider for employment all qualified applicants, including those with criminal histories, in a manner consistent with the requirements of applicable state and local laws (including (i) the San Francisco Fair Chance Ordinance, (ii) the City of Los Angeles’ Fair Chance Initiative for Hiring Ordinance, (iii) the Los Angeles County Fair Chance Ordinance, and (iv) the California Fair Chance Act) to the extent that (a) an applicant is not subject to a statutory disqualification pursuant to Section 3(a)(39) of the Securities and Exchange Act of 1934 or Section 8a(2) or 8a(3) of the Commodity Exchange Act, and (b) they do not conflict with th

Original posting on Mufgub's site ↗

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