Senior AI Integration Developer

Peraton

Red Bank (NJ)

On-site

USD 112,000 - 179,000

Full time

11 days ago

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Job summary

Peraton Labs seeks a Senior AI Integration Developer to lead the design and implementation of an AI assistant capability within a DoD-focused web app. You will build the MCP server, tool interfaces, and integrate locally-hosted models in air-gapped environments while coordinating with the broader engineering team.

The role requires deep domain understanding and strong software engineering skills. You will drive evaluation of model choices, design robust prompts, and ensure reliable AI outputs

Qualifications

  • Bachelor's degree with 8+ years of experience, or 6 years with a Master's, or 3+ years with a PhD in CS/CE/IS.
  • Experience deploying locally-hosted models (e.g., Ollama, llama.cpp) in offline or restricted environments
  • Strong understanding of the Model Context Protocol (MCP) — server design, tool schemas, and client-server communication
  • Prompt engineering and system prompt design for local model capabilities
  • Experience with agentic AI patterns — multi-step reasoning, tool chaining, error recovery
  • Familiarity with model selection tradeoffs — capability, context length, quantization, hardware needs
  • Proficiency in Python; familiarity with FastAPI; experience with Docker and containerized services
  • Experience with TypeScript/Node.js, React, Git, CI/CD, and automated testing
  • Must be a U.S. Citizen with ability to obtain/maintain a Secret clearance
  • Candidate should be local and able to work in Red Bank, NJ; Basking Ridge, NJ; or Silver Spring, MD

Responsibilities

  • Design and implement MCP server and tool interfaces exposing application data to the AI assistant
  • Deploy and configure locally-hosted models for air-gapped or connectivity-constrained environments
  • Evaluate and select local models appropriate for specific assistant tasks; assess capability and tradeoffs
  • Integrate LLM inference endpoints into the application backend and frontend for local and cloud models where applicable
  • Develop and refine system prompts, tool definitions, and context management strategies for local models
  • Define and execute evaluation frameworks to assess AI output quality, tool call accuracy, and assistant reliability
  • Identify high-value use cases in collaboration with domain experts and translate them into concrete AI tool designs
  • Maintain backend Python and TypeScript/Node.js services supporting AI functionality
  • Document AI architecture, tool schemas, prompts, model configurations, and evaluation results
  • Stay current with the evolving local model and MCP ecosystem landscape

Skills

Python
FastAPI
Docker
React
TypeScript/Node.js
PostgreSQL
Git/CI/CD
Clear communicator
U.S. Citizenship
System prompt design
AI integration

Education

Bachelor's degree in CS/Engineering/IS
Master's degree in CS/Engineering/IS
PhD in related field

Tools

Ollama
llama.cpp
LangChain
LangGraph
FastMCP

Job description

Responsibilities

Peraton Labs is seeking a Senior AI Integration Developer to lead the design and implementation of an AI assistant capability within an existing web application in support of RF spectrum monitoring for the Department of Defense. This is a technically demanding role at the intersection of applied AI, software engineering, and operational tooling.

The core focus of this position is the development of a context-aware AI assistant and the Model Context Protocol (MCP) server and tooling infrastructure that connects it to the application’s data, workflows, and services. Given the sensitive nature of the operational environment, the primary deployment target is locally-hosted models (e.g., Ollama) running in air-gapped or connectivity-constrained environments — with cloud-based LLM APIs as a secondary consideration. The right candidate understands not just how to wire up a model, but how to design tool interfaces and select or tune models that perform reliably under these constraints. It is particularly important for the candidate to take the time to properly understand the application domain and CONOPs in order to develop appropriate MCP tool chains.

This individual will work closely with the broader engineering team and domain stakeholders to identify high-value AI use cases, implement and iterate on MCP tools, and evaluate and improve the quality of AI-generated outputs over time. Familiarity with the full stack is also expected, as effective AI integration requires understanding the existing system that the assistant will interact with. The core web application for this effort uses the following technologies in the stack: FastAPI backend, React frontend, and PostgreSQL database).

Key responsibilities may include:

  • Design and implement MCP server and tool interfaces that expose application data and functionality to the AI assistant
  • Deploy and configure locally-hosted models (e.g., Ollama) for use in air-gapped or connectivity-constrained environments
  • Evaluate and select local models appropriate for specific assistant tasks; assess capability and performance tradeoffs across model sizes and families
  • Integrate LLM inference endpoints into the application backend and frontend, supporting both local and cloud-hosted models where applicable
  • Develop and refine system prompts, tool definitions, and context management strategies optimized for the capabilities and limitations of local models
  • Define and execute evaluation frameworks to assess AI output quality, tool call accuracy, and assistant reliability
  • Identify high-value use cases in collaboration with domain experts and stakeholders; translate them into concrete AI tool designs
  • Maintain and extend backend Python and TypeScript/Node.js services supporting AI functionality or work closely with other engineers to do so
  • Document AI architecture, tool schemas, prompt strategies, model configurations, and evaluation results
  • Stay current with the evolving local model and MCP ecosystem landscape
Qualifications

Required Qualifications:

  • Minimum of 8 years of experience with a Bachelor\'s degree; 6 years with a Master\'s degree; or 3+ years with a PhD in Computer Science, Computer Engineering, Information Systems, or similar/related programs.
  • Experience deploying and working with locally-hosted models (e.g., Ollama, llama.cpp, or similar) in offline or restricted network environments
  • Strong understanding of the Model Context Protocol (MCP) — server design, tool schemas, and client-server communication
  • Experience with prompt engineering and system prompt design, particularly tuning prompts for the capabilities of smaller or quantized local models
  • Experience with agentic AI patterns — multi-step reasoning, tool chaining, and error recovery
  • Familiarity with model selection tradeoffs — capability, context length, quantization, and hardware requirements
  • Ability to design structured evaluation approaches for AI output quality and tool performance
  • Strong judgment about AI assistant UX — what makes a tool call well-designed, when an AI response is actually useful, etc.
  • Proficiency in Python; familiarity with FastAPI or comparable frameworks
  • Experience with Docker and containerized service development
  • Familiarity with TypeScript/Node.js for server-side development
  • Experience with React for implementing AI assistant or chat UI components
  • Experience with Git, CI/CD pipelines, and automated testing infrastructure
  • Clear communicator across technical and non-technical audiences
  • Must be a U.S. Citizen with ability to obtain/maintain a Secret clearance
  • Candidate should be local and able to work within our Red Bank, NJ; Basking Ridge, NJ; or Silver Spring, MD locations

Desired Qualifications:

  • Experience with LangChain, LangGraph, and FastMCP
  • Experience with GPU hardware performance benchmarking on constrained edge-deployed infrastructure
  • Familiarity with performance evaluation including: tool selection accuracy, parameter extraction correctness, multi-step reasoning success rates, response quality scoring, latency benchmarking, and regression testing across model versions
  • Experience fine-tuning or adapting open-weight models for domain-specific tasks
  • Familiarity with RAG (retrieval-augmented generation) architectures and vector databases in offline or on-premise deployments
  • Background in RF, spectrum management, spectrum sensing, software defined radios, propagation modeling, signal processing, or related DoD domains
  • Cybersecurity awareness in the context of AI systems and DoD environments
  • Experience with cloud-hosted LLM APIs as a secondary deployment target
  • Active Secret (or Higher) Clearance
Peraton Overview

Peraton is a next-generation national security company that drives missions of consequence spanning the globe and extending to the farthest reaches of the galaxy. As the world’s leading mission capability integrator and transformative enterprise IT provider, we deliver trusted, highly differentiated solutions and technologies to protect our nation and allies. Peraton operates at the critical nexus between traditional and nontraditional threats across all domains: land, sea, space, air, and cyberspace. The company serves as a valued partner to essential government agencies and supports every branch of the U.S. armed forces. Each day, our employees do the can’t be done by solving the most daunting challenges facing our customers. Visit peraton.com to learn how we’re keeping people around the world safe and secure.

Target Salary Range

$112,000 - $179,000. This represents the typical salary range for this position. Salary is determined by various factors, including but not limited to, the scope and responsibilities of the position, the individual’s experience, education, knowledge, skills, and competencies, as well as geographic location and business and contract considerations. Depending on the position, employees may be eligible for overtime, shift differential, and a discretionary bonus in addition to base pay.

EEO

EEO: Equal opportunity employer, including disability and protected veterans, or other characteristics protected by law.

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