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Software Engineer III – Generative AI Platform Engineering

Job in Town of Vermont, Vermont, Dane County, Wisconsin, USA
Listing for: Bank of America
Full Time position
Listed on 2026-07-18
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), DevOps, Backend Developer, Cloud Engineer - Software
Salary/Wage Range or Industry Benchmark: 150000 - 210000 USD Yearly USD 150000.00 210000.00 YEAR
Job Description & How to Apply Below
Location: Town of Vermont

Position Summary

This is a hands‑on software engineering role focused on building enterprise‑grade Generative AI, Data Science, and AI Platform capabilities within Bank of America’s strategic AI ecosystem. The engineer will work as an individual contributor responsible for designing, developing, and delivering reusable GenAI platform services, frameworks, APIs, and application components that support AI model development, deployment, inference, automation, and governance. The successful candidate will partner with senior engineers, architects, product owners, and data scientists to develop scalable, secure, and resilient solutions leveraging modern AI frameworks, cloud‑native technologies, distributed computing platforms, and enterprise engineering practices.

This role is ideal for an engineer passionate about Generative AI, application development, platform engineering, automation, and building reusable capabilities that accelerate enterprise AI adoption.

Responsibilities
  • Codes solutions and unit tests to deliver a requirement/story per the defined acceptance criteria and compliance requirements
  • Designs, develops, and modifies architecture components, application interfaces, and solution enablers while ensuring principal architecture integrity is maintained
  • Mentors other software engineers and coaches the team on Continuous Integration and Continuous Development (CI‑CD) practices and automating the tool stack
  • Executes story refinement, definition of requirements, and estimates work necessary to realize a story through the delivery lifecycle
  • Performs spike/proof of concept as necessary to mitigate risk or implement new ideas
  • Automates manual release activities
  • Designs, develops, and maintains automated test suites (integration, regression, performance)
  • Develops and enhances enterprise Generative AI platform capabilities, reusable services, and self‑service tools
  • Designs and builds AI‑powered applications, agentic workflows, RAG solutions, and MCP‑enabled services
  • Develops scalable APIs, microservices, and platform components supporting AI/ML lifecycle management
  • Builds and maintains frameworks supporting model development, fine‑tuning, deployment, inference, monitoring, and observability
  • Implements event‑driven and streaming solutions leveraging technologies such as Kafka and distributed processing platforms
  • Contributes to CI/CD pipelines, automation frameworks, testing strategies, and Dev Ops practices
  • Collaborates with platform engineers, architects, data scientists, and business stakeholders to deliver new capabilities
  • Participates in design discussions, code reviews, sprint planning, story refinement, and estimation activities
  • Ensures solutions meet enterprise standards for security, scalability, governance, resiliency, and operational excellence
  • Supports platform observability, monitoring, and performance optimization initiatives
  • Continuously evaluates emerging AI technologies and contributes innovative solutions to enhance platform capabilities
Core Engineering Responsibilities
  • Develops code and automated tests to deliver stories and requirements meeting quality and compliance standards
  • Participates in application design leveraging data, application, integration, and platform architecture patterns
  • Collaborates in requirement analysis, story refinement, and solution design activities
  • Estimates and delivers assigned work within Agile development cycles
  • Builds agentic applications, AI assistants, workflow automation capabilities, and event‑driven services using Kafka, containers, and MCP architectures
  • Delivers secure, scalable, observable, and resilient software solutions aligned with enterprise standards
  • Troubleshoots, optimizes, and maintains platform services to ensure operational excellence
Required Qualifications
  • Bachelor’s degree in computer science, engineering, data science, or a related field
  • 6+ years of software engineering experience with strong expertise in Python‑based application development
  • Experience developing AI/ML, Data Science, Data Engineering, or analytics applications in enterprise environments
  • Strong understanding of modern Generative AI and Data Science platform architectures, including…
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