Senior ML Engineer

Adelphi Data

Washington (District of Columbia)

Hybrid

USD 180,000 - 240,000

Full time

2 days ago
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Job summary

Adelphi Data in the Washington, DC area is seeking a Forward Deployed Senior Machine Learning Engineer who can own end-to-end delivery of agentic, full-stack systems built atop frontier models. The role combines software development, LLM Ops, and secdevops in a fast-paced defense/intelligence context, with close collaboration with government customers.

The position requires an active U.S. Government clearance and a hybrid work model with three days per week in the DC office or onsite with

Qualifications

  • Production experience delivering end-to-end LLM-enabled services.
  • Security-conscious development for DoD/IC environments.
  • Ability to scope problems with customers and deliver agentic AI applications.

Responsibilities

  • Own end-to-end delivery of agentic, full-stack systems from prototype to production.
  • Build and deploy ML services leveraging LLMs, embeddings, RAG, and agent orchestration.
  • Work directly with customers to scope problems, sequence delivery, and ship novel AI applications.
  • Codify repeatable patterns into reusable tools and building blocks for faster delivery.

Skills

LLM engineering
Agent frameworks
Secure ML deployment
Prompt engineering
Problem solving

Tools

Docker
Kubernetes
AWS
LangGraph
OpenAI Agents SDK
Claude Agent SDK
AutoGen
Copilot

Job description

About Adelphi

Adelphi's Vision is to build the biggest AI Deployment company for National Security, which requires talent that is extremely good at problem solving, gets excited about National Security challenges, and thrives in software factories. We're executing a Mission that (1) Identifies the core bottlenecks in Warfighting, Intelligence and the Enterprise, (2) Assigns top talent with backgrounds in systems and machine learning engineering, and (3) Finds repeatability in solution development to target similar offices across the DoW/IC. The business has 10x'd in under two years and has built trust with the senior most leaders at the Department of War and Intelligence Community.

About Adelphi

Adelphi's Vision is to build the biggest AI Deployment company for National Security, which requires talent that is extremely good at problem solving, gets excited about National Security challenges, and thrives in software factories. We're executing a Mission that (1) Identifies the core bottlenecks in Warfighting, Intelligence and the Enterprise, (2) Assigns top talent with backgrounds in systems and machine learning engineering, and (3) Finds repeatability in solution development to target similar offices across the DoW/IC. The business has 10x'd in under two years and has built trust with the senior most leaders at the Department of War and Intelligence Community.

About the Role:

The Forward Deployed Senior Machine Learning Engineer position requires a mix of software development, LLM Ops, and secdevops practices, resulting in an exciting, fast-paced engineering role. This role requires the ability to provide solutions for the full LLM stack, from the OS, storage, and network up to the API and transport layer. Experience in the defense or intelligence fields is required. You will own end-to-end delivery of agentic, full-stack systems built on top of frontier models, from first prototype to stable production, embedded alongside our defense and intelligence customers.

Location:

This role is based in the DC/Metro area - we follow a hybrid work model with three days per week in office or onsite with customers.

Clearance Requirement:

An active U.S. Government clearance is required.

Is this you?

We are an AI-native engineering team. We expect every engineer to leverage LLMs and AI tooling as a core part of how they design, build, ship, and operate agentic systems that turn frontier-model capability into mission outcomes.

  • You use AI coding tools (Claude Code, Cursor, Copilot) daily and instinctively.
  • You prompt-engineer through complex architecture and debug sessions, leverage LLMs across the full development lifecycle, maintain a clear-eyed view of AI limitations in high-security contexts, and stay current with emerging models and tooling.
  • Hands-on with modern agent frameworks and SDKs (LangGraph, OpenAI Agents SDK, Claude Agent SDK, AutoGen, or similar) and agent evaluation / observability tooling.
  • Familiarity with MCP or similar LLM integration frameworks.
  • You have a clear-eyed view of AI limitations. You know when to trust AI-generated output and when to verify.
Expectations:
  • Own end-to-end delivery of agentic, full-stack systems from first prototype to stable production, embedded alongside defense and intelligence customers.
  • Build and deploy ML services leveraging LLMs, embeddings, RAG, and agent orchestration into production environments, including classified and air-gapped ones.
  • Work directly with customers to scope problems, sequence delivery, and ship novel AI applications under real-world constraints.
  • Codify repeatable patterns into reusable tools and building blocks that help the team ship faster.
Bonus Points:
  • Proficiency in infrastructure management (Docker, Kubernetes, AWS).
  • Expertise in encryption, authentication, Linux systems administration, DevOps, or SRE.
  • Production experience launching agentic services and forward-deployed AI applications that drive operational value at the customer site.
  • Experience as a forward-deployed engineer or tech-led delivery role, embedded with mission customers, scoping problems, sequencing delivery, and shipping novel agentic applications under tight constraints
  • Experience with federated or privacy-preserving data architectures (such as differential privacy and secure enclaves).
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