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Traba

Staff Software Engineer (AI Agents)

  • Office
  • 6+ years

Salary

$240,000 - 300,000/ year

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Description

Traba is building the AI operating system for the industrial supply chain - the network of warehouses, manufacturers, logistics providers, and workers behind the physical goods people rely on every day.

We started by tackling labor, supplying industrial businesses with consistent, reliable temporary workforces, and quickly became the fastest growing staffing company in America.

Since then, we've expanded our suite of AI agents to help logistics providers, manufacturers, 3PLs, and other industrial businesses fully automate their manual workflows, derive insights from their data streams, and transform their decision intelligence.

Our mission is to build a world where the global supply chain operates at peak efficiency.

We’re proud to be backed by some of the world’s best investors, including Founders Fund, Khosla Ventures, and General Catalyst.

You'll build the AI agents themselves—the harnesses, evals, orchestration, and model strategy the rest of Traba's product runs on. We're seeking an entrepreneurial Staff Agent Engineer to join as a founding member of the Agents team and lead the development of Traba's agentic platform—the layer that synthesizes the data flowing through our marketplace, talks to our customers' operational systems, and acts autonomously inside the workflows that run their facilities. (Our Applied AI team puts these agents to work across the product; you own the agents, evals, and model strategy they depend on.) You'll partner with our CTO to make the core architectural calls on how agents are built, evaluated, and deployed at Traba; set the bar for quality and reliability; and bring the outside perspective on agent-building, FDE-style customer immersion, and data-product craft that this 0-to-1 product needs.

Responsibilities

  • Architect Traba's agent platform end-to-end—orchestration runtime, eval and observability stack, the integration layer to internal and customer systems (WMS/TMS/ERP), and the patterns every agent is built on.
  • Own the foundational technical decisions: model strategy, harness design, retrieval and memory architecture, tool/MCP surface, and how we measure quality.
  • Spend real time in the field with customers and operators—translating what you see into durable product and repeatable deployment patterns.
  • Build evaluation as a real engineering discipline—datasets, graders, regression suites, and experimentation tooling.
  • Hire and mentor the engineers who build alongside you, and set the standard for what “good” looks like.
  • Partner with the CTO, product, and ops leadership on the multi-year platform roadmap.

Requirements

  • You've built agents that survived contact with reality. You've shipped agent systems into production at scale—designed the harness, picked the orchestration patterns, owned the evals, and lived with the on-call—and you have strong opinions on where to draw the line between prompting, fine-tuning, retrieval, and code.
  • Domain depth meets technical breadth. You're as comfortable in a warehouse on a customer site as in a design doc—you learn an industry's actual operations (WMS quirks, shift cadence, exception handling) and let that shape architecture.
  • Set direction by shipping. You raise the bar by writing the canonical example, not just the doc—picking the foundational tools, integrating the right model providers, designing the eval infrastructure, and bringing others along.
  • Sweat the small stuff at staff scale. You have strong opinions on eval datasets, prompt versioning, observability for agents, and the line between a clean abstraction and an over-engineered one.
  • 7+ years of software engineering, with 2+ years of hands-on production work on LLM- or agent-based systems.
  • Deep in Python and/or TypeScript/Node.js, with a track record designing distributed systems, APIs, and data models on PostgreSQL and modern messaging (Kafka, RabbitMQ, or equivalent).
  • Demonstrated ownership of a non-trivial production agent system: orchestration, tool use, retrieval, evals, observability, and cost/latency tuning.
  • Background that maps to at least one of: vertical AI / AI-agent company, a forward-deployed engineering role, or an AI-native data company. Bonus for supply chain, logistics, or industrial exposure.
  • A history of leading 0-to-1 builds in early-stage environments—comfortable with ambiguity and high-agency by default.
  • Strong written and verbal communication—you can run a customer workshop, write the design doc, and recruit your future teammates.

Conditions

The compensation range for this position is set between $240,000 and $300,000, reflecting our market analysis and other relevant considerations. However, exceptions may be made for candidates with qualifications that significantly differ from those outlined in the job description.

Benefits

  • Start-up equity
  • Competitive Salary
  • 100% Paid health, dental & vision coverage
  • Dinner Provided via DoorDash, free DashPass & stocked kitchen for NY employees
  • Commuter benefit
  • 🏽 Gympass Benefit
  • ✚✚ Additional: One Medical Membership, Gympass, HSA via Optum, Talkspace, HealthAdvocate, Teledoc Health

Where you’d work

From the office

About the company

Traba

Offices in New York City, United States, San Francisco, United States

Your chances

Worth a look before you spend an evening tailoring a CV for it.

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Details12 facts · Role, Location, Compensation, Employment
Tech stack
  • TypeScript
  • Node.js
  • Python
  • PostgreSQL
  • JavaScript
  • Kafka
  • LLMs
Seniority
Staff
Type
Full-time
Equity
Equity offered
Specialty
Backend
Region
United States
Show 6 more factsShow less

Role

Category
Development
Specialty
Backend
Seniority
Staff
Experience
7+ years
Tech stack
  • TypeScript
  • Node.js
  • Python
  • PostgreSQL
  • JavaScript
  • Kafka
  • LLMs

Location

Work model
Office
Region
United States
Offices
  • New York City, United States
  • San Francisco, United States

Compensation

Salary
$240,000 - 300,000 / year
Pay period
Annual
Equity
Equity offered

Employment

Type
Full-time

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