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Sr AI Engineer - Platform Engineering

Job in Columbus, Franklin County, Ohio, 43224, USA
Listing for: The Hartford
Full Time position
Listed on 2026-08-27
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Backend Developer, Cloud Engineer - Software, Software Architect
Salary/Wage Range or Industry Benchmark: 128000 - 191000 USD Yearly USD 128000.00 191000.00 YEAR
Job Description & How to Apply Below

Senior Staff Software Engineer - IE07HE

We’re determined to make a difference and are proud to be an insurance company that goes well beyond coverages and policies. Working here means having every opportunity to achieve your goals – and to help others accomplish theirs, too. Join our team as we help shape the future.

This

Requisition Hires Senior AI Engineers Who Will

Design and deliver production‑grade Agentic AI systems using Google ADK, Anthropic MCP, Lang Graph/Lang Chain, and modern Agentic protocols. Build secure, scalable AI platform capabilities with strong engineering fundamentals in Python/Typescript, Terraform, and GCP. Enable enterprise adoption of AI by creating reusable frameworks, APIs, and platform capabilities aligned with engineering standards, compliance needs, and modern cloud patterns.

Overview

The Senior AI Engineer will architect, build, and operationalize advanced AI and multi‑agent solutions leveraging RAG, GraphRAG, Agentic AI frameworks, and enterprise‑grade cloud engineering.

A key requirement is robust, practical experience implementing MCP and ADK Agentic Protocols, with a solid understanding of:

  • Agent memory
  • Session and context lifecycle management
  • Tooling interfaces
  • Secure capability boundaries
  • Permissions and role enforcement

Additionally, candidates must have hands‑on experience with AlloyDB’s AI/Agentic capabilities—including vector indexing, embedding support, and tight integration with Vertex AI—as well as strong fundamentals in PostgreSQL / Postgres RDS for building retrieval systems, agent memory stores, and structured context‑management layers.

The engineer must demonstrate strong foundational engineering skills in Python or Typescript, IaC (Terraform), Dev Ops pipelines, and secure distributed system design using GCP services such as Vertex AI, Cloud Run, Cloud Storage, and AlloyDB.

The role additionally requires deep, hands‑on experience building and extending agent harnesses— the runtime scaffolding that orchestrates the agent execution loop, tool invocation, dynamic context‑window assembly, sub‑agent delegation, and guardrail and permission enforcement—together with production expertise in Lang Chain and Lang Graph.

Fluency in spec‑driven, agentic development frameworks such as Git Hub Spec-Kit, Open Spec, and BMAD‑METHOD, used to translate intent into executable specifications and orchestrate AI‑assisted delivery at enterprise scale.

Responsibilities AI/Agentic System Architecture & Development
  • Design and implement Agentic AI solutions using Google ADK, Lang Graph, Lang Chain, and Agent Engine.
  • Build and extend agent harnesses, implementing the agent execution loop, tool‑call orchestration, dynamic prompt and context assembly, sub‑agent delegation, streaming, token‑budget management, and hook and guardrail enforcement.
  • Engineer advanced Lang Chain and Lang Graph orchestration, including LCEL chains, stateful graphs, checkpointing, human‑in‑the‑loop workflows, memory, retrievers, callbacks, and Lang Smith tracing and evaluation.
  • Build advanced RAG and GraphRAG pipelines, vector retrieval systems, and knowledge‑graph‑augmented reasoning.

Implement MCP‑compliant agents with capability registration, secure tool invocation, memory storage, and session state management.

Apply deep knowledge of Agentic Protocol design (ADK & MCP), such as:
  • Agent memory and conversation state
  • Tool authorization
  • Multi‑step workflows and orchestration
  • Session boundary and identity controls
Leverage AlloyDB and PostgreSQL/RDS for:
  • Vector storage and hybrid search
  • Agent memory persistence, session management, and state recovery
  • Structured prompt scaffolding and fact retrieval
  • ACID‑compliant transactional reasoning layers
  • Develop scalable AI microservices using Python/Typescript, Cloud Run, Vertex AI, and event‑driven components.
  • Optimize model inference, retrieval latency, and overall system performance.
Spec-Driven & Agentic Development
  • Drive spec-driven development (SDD) using frameworks such as Git Hub Spec-Kit, Open Spec, and BMAD‑METHOD, translating product intent into executable specifications, plans, and agent‑ready task breakdowns.

Establish specification‑first review gates and living change…

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