Deployed Engineer - Federal
Job Description
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About the Team
The LangChain Deployed Engineering - Federal team works directly with U.S. Government customers — including the Department of Defense (DoD), Civilian Agencies, and the Intelligence Community (IC) — who are building and operating AI agents in mission-critical environments.
This is a hands-on, highly technical team that partners closely with government engineers, technical program managers, and system integrators across the full lifecycle — from pre-award technical shaping and evaluations to post-deployment advisory work in secure environments. The focus is on achieving the technical win, architecting secure and compliant agent systems, and enabling agencies to operate AI agents reliably at scale using the LangChain suite.
Deployed Engineers sit at the intersection of engineering, product, security, and go-to-market. You will shape how LangChain is adopted across classified and unclassified environments, ensuring alignment with federal compliance requirements while feeding mission-driven insights back into the platform.
About the Role
As a Deployed Engineer, you’ll work on some of the hardest problems in applied AI — not demos or experimental research, but production systems supporting real-world missions.
You’ll help defense, civilian, and intelligence customers design, deploy, and operate AI agents in secure, regulated, and high-stakes environments. The feedback loop is fast, the mission impact is tangible, and your work directly influences how AI agents are deployed across the federal landscape.
You will operate in environments that demand security, reliability, compliance (FedRAMP, IL levels, etc.), and operational rigor.
What You’ll Do
- Co-architect and co-build production AI agents with federal engineering teams and system integrators
- Own the technical win in federal pre-sales engagements by designing secure POCs, supporting RFI/RFP technical responses, and guiding technical evaluations
- Design architectures that meet federal security and compliance requirements (FedRAMP, DoD IL2–IL6, NIST, etc.)
- Help agencies deploy and operate agent-based applications such as mission support copilots, intelligence analysis agents, research automation systems, and multi-step operational workflows
- Advise customers post-award on architecture, scalability, observability, evaluation, and long-term roadmap decisions
- Deliver technical demos, workshops, and enablement sessions tailored to government developer and operator audiences
- Partner with security teams to navigate ATO processes and accreditation pathways
- Surface field feedback from federal use cases and contribute reusable patterns, secure deployment guides, and example code that scale across agencies
- Occasionally contribute code upstream when it meaningfully improves federal customer outcomes
What You’ll Bring
- 3+ years in a relevant technical role (software engineering, customer engineering, solutions engineering, product engineering), ideally supporting federal or regulated customers
- Experience working with DoD, Civilian Agencies, Intelligence Community, or federal system integrators
- Strong Python and JavaScript fundamentals, with deep systems thinking
- Experience designing agent-based or LLM-powered systems beyond simple API calls, including multi-step workflows, orchestration, guardrails, and failure handling
- Familiarity with secure cloud environments (AWS GovCloud, Azure Government, etc.)
- Comfort operating in regulated environments with security, compliance, and documentation requirements
- Experience supporting technical evaluations, architecture reviews, and competitive down-select processes
- Ability to clearly explain technical tradeoffs to government stakeholders and build trust across engineering and program leadership
- Ownership mindset — you take responsibility for mission outcomes, not just recommendations
- Bias toward action and comfort operating in ambiguity
- Excitement about running AI agents in real-world, production federal environments — not just building demos
Nice to Have
- Active or prior U.S. security clearance (Secret, TS/SCI)
- Experience deploying AI systems in classified or air-gapped environments
- Familiarity with FedRAMP authorization processes or DoD Impact Levels (IL2–IL6)
- Experience with LLM evaluation, observability, red-teaming, or guardrails in high-assurance settings
- Hands-on experience with AWS, Azure, containers, Kubernetes, and secure networking architectures
- Experience working alongside federal system integrators (Booz Allen, SAIC, Leidos, etc.)
- Production experience with LangChain, LangGraph, or similar agent frameworks
Compensation & Benefits
We offer competitive compensation that includes base salary, variable compensation for relevant roles, meaningful equity, benefits, and perks. Benefits include things like medical, dental, and vision coverage, flexible vacation, a 401(k) plan, and life insurance. Actual compensation and offerings will vary based on role, level, and location. Team members in the EU, UK, and APAC receive locally competitive benefits aligned with regional norms and regulations.
Annual OTE range: $150,000–$250,000 USD
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LangChain
View Company ProfileLangChain is a pioneering AI software company and the creator of the wildly popular open-source framework designed to simplify the creation of applications using large language models (LLMs). Founded in 2022, the company has rapidly become the foundational infrastructure layer for the generative AI boom. Under the hood, LangChain provides developers with highly modular components to chain together complex AI workflows—seamlessly connecting LLMs to external data sources, APIs, and long-term memory storage. Beyond their open-source roots, they offer LangSmith, a premium enterprise DevOps platform that allows engineering teams to debug, test, evaluate, and monitor their LLM applications in real-time. Their primary target audience consists of hardcore software engineers, AI researchers, and enterprise tech teams who need to build, deploy, and scale production-ready generative AI agents. What sets LangChain apart in the explosive AI developer ecosystem is its unparalleled community adoption and its ability to transform raw, unpredictable AI models into structured, highly reliable enterprise applications.
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