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WeHireYou

Principal AI Engineer

paris, IN

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About this opportunity

WeHireYou lists this Principal AI Engineer opportunity in paris, Indiana. Review the employer’s description below for duties, qualifications and application requirements.

Job description

Principal AI Engineer

We believe conversations will become the #1 way to shop.

At Gorgias, we’re building the platform that makes this real: a unified AI agent that sells, supports, and re‑engages customers across the entire journey. Conversational Commerce is the future of ecommerce, and we’re leading that shift.

Our mission is to turn every interaction between a brand and its customers into a relationship: personal, seamless, and intelligent. By combining deep product expertise with the latest in AI, we’re making shopping feel more natural, human, and connected than ever before.

To win, we focus relentlessly on:

Quality: conversations that feel authentic and on-brand.

Experience: effortless shopping from chat to checkout.

Re‑engagement: personal, 1-1 dialogue instead of noisy marketing.

The opportunity is massive. As AI reshapes how people buy, Gorgias is building the foundation for the next decade of ecommerce, where every brand has its own intelligent agent and every customer feels understood.

Join us to make Conversational Commerce real.

Team & Context

Gorgias is an AI‑first company building products powered by LLMs and agent‑based systems.

As we scale our AI capabilities, we need to improve how we evaluate, iterate, and operate these systems in production. Today, parts of this process remain manual or fragmented, especially around prompt iteration, validation, and evaluation workflows.

This role will focus on building and scaling the systems that support AI evaluation and iteration, helping the team move faster and more reliably.

About the Role

You’ll have a chance to:

Work on production AI systems used by thousands of businesses

Define how we evaluate and improve AI performance at scale

Build internal platforms and tooling used by AI and engineering teams

Reduce manual processes and improve iteration speed on AI features

Collaborate across AI, ML, and product teams

Raise the engineering bar and mentor others

What You’ll Do

1. Architect the Evaluation "Factory"

End-to-End Platform Ownership: Architect and lead the development of our internal evaluation platform, moving the needle from manual testing to a fully automated lifecycle (from LLM-as-a-judge creation to production monitoring).

Accelerate Time-to-Market: Directly impact our primary KPI by designing tools and workflows that drastically reduce the time it takes to deliver a calibrated, production‑ready agent.

Infrastructure Collaboration: Partner with the Orchestration team to build the robust, scalable infrastructure required to run complex evals and agentic simulations at scale.

2. Scaling AI Expertise

Squad Empowerment: Serve as the "AI Technical Lead" for product squads, guiding them through the complexities of agent design, failure analysis, and prompting best practices.

Decentralize Quality: Instead of being a bottleneck, you will build the "paved road" that allows product squads to become autonomous in measuring and maintaining their own agent quality.

Standard Setting: Define what "good" looks like for AI at (Company Name). You’ll translate non-deterministic AI behavior into predictable engineering metrics that the whole organization can trust.

3. Engineering Leadership

Mentor & Level Up: Bridge the gap between traditional software engineering and AI. You’ll mentor engineers on how to apply rigorous system design to the world of LLMs and agents.

Continuous Observability: Take ownership of the feedback loop, ensuring that production insights from our agents directly inform the next iteration of our evaluation datasets.

Who You Are

8+ Years of Engineering Excellence: You are a Staff-level engineer first. You’ve built systems that handle high scale, and you know how to architect for long‑term maintainability and performance.

Agentic Curiosity: You’ve moved beyond the "chatbot" phase and are actively experimenting with AI Agents. You understand that the challenge isn’t the prompt, but the orchestration, state management, and reliability of the agent's actions.

Systems Thinker (Non‑Deterministic Mindset): You recognize that AI is probabilistic. You are excited by the challenge of building deterministic "wrappers" and Evaluation loops around models to make them safe for production.

The "Applied" Edge: You likely come from a background in distributed systems, internal platforms, or developer tooling, and you’re now applying that rigor to the AI stack.

What We’re Looking For

Beyond the Wrapper: You have serious experience moving beyond simple API calls to architecting multi‑stage AI orchestrations (agents, chained workflows, or custom runtime logic).

Orchestration Experience: Even if you aren't an AI researcher, you have experience building complex, multi‑step workflows (e.g., temporal systems, state machines, or event‑driven architectures) and want to apply this to Agentic loops.

Reliability Obsession: You understand why "vibes‑based" testing doesn't work. You’ve started exploring or building Eval frameworks to measure how models perform against real‑world data.

Infrastructure Mindset: You are comfortable with the "glue" that makes AI work: vector databases, semantic caching, and API integration with third‑party tools.

Tech Stack & Experience

Strong backend experience (Python preferred)

Experience with distributed systems and event‑driven architectures

Familiarity with tools like Kafka, Pub/Sub, or equivalent

Experience working with LLMs (prompting, RAG, agents, evaluation workflows)

Experience building APIs and scalable services

Understanding of monitoring, observability, and system performance

Hiring Process

Recruiter phone screen

HM Interview

System Design Interview

AI Case Study (take‑home, ~1–2 hours)

Technical Deep Dive of case study

Final Leadership Interview

Perks and Benefits

Competitive salary & equity (90th percentile...

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Who can apply

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