Deployed Engineer (Early Career- SF/NY)

LangChain, Inc

$165K — $200K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 3+ years in a relevant technical role (software engineering, customer engineering)
  • Strong Python and JavaScript skills
  • Experience designing agent-based or LLM-powered applications
  • Comfortable working directly with customers during POCs and architecture reviews
  • Ability to explain technical tradeoffs clearly to developer audiences
  • Strong sense of responsibility for outcomes
  • Proactive problem-solving attitude focusing on real production needs

Responsibilities

  • Co-architect and build production AI agents with customer teams
  • Own the technical win in pre-sales with POC design and evaluations
  • Help customers deploy and operate agent-based applications
  • Advise customers on architecture, best practices, and roadmaps post-sale
  • Conduct technical demos, trainings, and workshops for developers
  • Gather and contribute field feedback, creating reusable patterns and code
  • Occasionally contribute code upstream to improve customer outcomes

Benefits

  • Medical, dental, and vision coverage
  • Flexible vacation policy
  • 401(k) plan
  • Meals provided on in-office days in the US
Full Job Description
About the Team

This team works directly with companies building and running AI agents in production, helping turn ideas and prototypes into systems teams can rely on.

This is a hands-on, highly technical team that partners closely with customer engineers across the full lifecycle, from pre-sales evaluations to post-deployment advisory work. The focus is on achieving the technical win, co-designing agent architectures, and helping customers operate agents reliably at scale using the LangChain suite.

Sales Engineers sit at the intersection of engineering, product, and go-to-market, shaping how LangChain is adopted in the field and feeding real-world insights back into the platform.

About the Role

You'll work on some of the hardest problems in applied AI alongside customers. This is not demos or research, but helping teams build systems they rely on in production. The feedback loop is fast, the impact is visible, and your work directly shapes how AI agents are built in the real world.

What You'll Do

  • Co-architect and co-build production AI agents with customer engineering teams
  • Own the technical win in pre-sales by designing POCs, answering deep technical questions, and guiding evaluations
  • Help customers deploy and operate agent-based applications such as conversational agents, research agents, and multi-step workflows
  • Advise customers post-sale on architecture, best practices, and roadmap-level decisions
  • Run technical demos, trainings, and workshops for developer audiences
  • Surface field feedback and contribute reusable patterns, cookbooks, and example code that scale across customers
  • Occasionally contribute code upstream when it meaningfully improves customer outcomes
  • This role requires 40% travel to customer sites to support deployment, onboarding, and ongoing technical engagement


What You'll Bring
  • 3+ years in a relevant technical role (software engineering, customer engineering, solutions engineering, founding/product engineering), ideally in a startup or scale-up
  • Strong Python, JavaScript and systems fundamentals
  • Have designed agent-based or LLM-powered applications beyond simple API calls, including multi-step workflows, orchestration, and failure handling
  • Are comfortable working directly with customers during POCs, architecture reviews, and technical evaluations
  • Can explain technical tradeoffs clearly and build trust with developer audiences
  • Take responsibility for outcomes, not just recommendations
  • Have a bias toward action and enjoy figuring things out as you go
  • Are excited about operating AI agents in production, not just building demos


Nice to Have's:

  • You've deployed AI agents in production, especially using LangChain, LangGraph, or similar frameworks
  • Worked with LLM evaluation, observability, or guardrails
  • Have experience with cloud environments (AWS, GCP, Azure), containers, and basic Kubernetes concepts
  • Have shipped and operated production software and are comfortable owning systems under real-world constraints


Compensation

Annual OTE range: $165,000+ (depending on experience)

Compensation Philosophy:

We offer competitive compensation that includes base salary, variable compensation for relevant roles, meaningful equity, benefits, and perks. 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.

Benefits

Benefits include medical, dental, and vision coverage, flexible vacation, a 401(k) plan, meals on in-office days in the US and more.

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