AI Developer, Senior Associate

State Street

Burlington (MA)

On-site

USD 130,000 - 190,000

Full time

14 days+
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Job summary

State Street seeks an AI Developer to advance AI-enabled capabilities across the Charles River Investment Management Solution and Alpha Platform. You will design, build, and scale production-grade AI systems embedded in investment workflows.

You will work hands-on with LLMs, AI orchestration, and distributed systems, translating patterns into secure, scalable enterprise solutions while collaborating with product owners, architects, and domain teams to operationalize AI across client-facing and

Qualifications

  • Hands-on engineer with experience in LLMs, AI orchestration, and distributed systems.
  • Experience building AI copilots, conversational interfaces, or agent-based systems.
  • Experience with RAG architectures, embeddings, and vector databases.
  • Familiarity with MCP frameworks, tool-calling patterns, and agent orchestration.
  • Proficiency in Python and at least one other language (Java, C#, or TypeScript).

Responsibilities

  • Design, develop, and deploy AI-powered services including copilots and automation tools.
  • Build and integrate LLM-based solutions using orchestration frameworks and tool-calling patterns.
  • Implement RAG pipelines using enterprise data sources and vector databases.
  • Develop and integrate multi-agent systems using MCP servers, APIs, and A2A based tooling.
  • Embed AI capabilities into core CRD and Alpha workflows across front, middle, and back-office processes.
  • Build reusable AI enablement platforms, SDKs, and shared services for product teams.
  • Integrate AI services with cloud platforms and enterprise systems.
  • Expose AI capabilities through API Management layers and event-driven architectures.
  • Ensure performance, scalability, and reliability of AI systems in production environments.
  • Implement monitoring, evaluation, and observability for AI models and pipelines.
  • Apply responsible AI practices (security, explainability, compliance, governance).
  • Collaborate with product, architecture, data science, and UX teams to deliver end-to-end solutions.
  • Participate in agile development processes including sprint planning, code reviews, and retrospectives.

Skills

LLMs
Prompt engineering
AI system design
Multi-agent systems
Python
Java
C#
TypeScript
API-driven architectures
Distributed systems
Cloud-native AI services
Kafka
Event streaming
CI/CD
Testing
Distributed caching

Education

B.S./M.S. in Computer Science/Engineering/Mathematics

Tools

Redis
Hazelcast

Job description

AI Developer
Who we are looking for

The AI Engineer will play a key role in advancing AI-enabled capabilities across the Charles River Investment Management Solution and Alpha Platform. This individual will design, build, and scale production-grade AI systems, including copilots, agentic workflows, and automation services embedded directly into investment management processes.

To be successful, the candidate must be a hands‑on engineer with strong experience in LLMs, AI orchestration, and distributed systems, capable of translating emerging AI patterns (e.g., RAG, agent frameworks, MCP integration) into secure, scalable enterprise solutions. This role requires close collaboration with product owners, architects, and domain teams to operationalize AI across client‑facing and internal workflows.

Why this role is important to us
  • Enables Scalable AI Adoption: Builds reusable platforms and services that allow product teams to rapidly integrate AI without fragmentation

  • Drives Business Impact: Embeds AI into front-to-back workflows, improving productivity, automation, and decision‑making for clients

  • Bridges Innovation and Production: Converts emerging AI technologies into secure, governed, production‑ready capabilities

  • Accelerates Time-to-Market: Enables faster delivery of high-value AI use cases through standard architecture and tooling

What you will be responsible for
  • Design, develop, and deploy AI-powered services, including copilots, agent-based workflows, and automation tools

  • Build and integrate LLM-based solutions using orchestration frameworks and tool-calling patterns

  • Implement RAG pipelines using enterprise data sources and vector databases

  • Develop and integrate multi-agent systems using MCP servers, APIs, and A2A based tooling

  • Embed AI capabilities into core CRD and Alpha workflows across front, middle, and back‑office processes

  • Build reusable AI enablement platforms, SDKs, and shared services for product teams

  • Integrate AI services with cloud platforms and enterprise systems

  • Expose AI capabilities through API Management layers and event‑driven architectures

  • Ensure performance, scalability, and reliability of AI systems in production environments

  • Implement monitoring, evaluation, and observability for AI models and pipelines

  • Apply responsible AI practices (security, explainability, compliance, governance)

  • Collaborate with product, architecture, data science, and UX teams to deliver end-to-end solutions

  • Participate in agile development processes including sprint planning, code reviews, and retrospectives

What we value
  • Strong expertise in LLMs, prompt engineering, and AI system design

  • Experience building AI copilots, conversational interfaces, or agent‑based systems

  • Hands‑on experience with RAG architectures, embeddings, and vector databases

  • Familiarity with MCP frameworks, tool‑calling patterns, and agent orchestration

  • Experience with cloud‑native AI services (Azure preferred) and distributed architectures

  • Proficiency in Python and at least one additional language (Java, C#, or TypeScript)

  • Experience with API‑driven architectures, microservices, and event streaming (Kafka, Event Hub)

  • Knowledge of distributed caching (Redis, Hazelcast) and performance optimization patterns

  • Strong software engineering fundamentals: testing, CI/CD, code quality, and design patterns

  • Familiarity with AI governance, model risk management, and security best practices

  • Ability to work across strategic and hands‑on engineering tasks

  • Strong collaboration and communication skills in cross‑functional environments

Education & Preferred Qualifications
  • B.S. or M.S. in Computer Science, Engineering, Mathematics, or related field

Preferred:
  • Experience in investment management, trading systems, or financial data platforms

  • Experience with AI agent

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