Forward Deployed AI Engineer (Python) - Remote - USA

FullStack Labs

• $150K — $180K *
US-AnywhereRemote in Louisiana, US
Enterprise Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 8-10+ years of experience in ML, data, and software engineering.
  • Proficiency in Python for production-grade services; familiarity with TypeScript, Node, .NET, or Java is advantageous.
  • Proven background as an ML/Data Architect or Principal Engineer, capable of defining an AI roadmap.
  • Experience designing and owning CI/CD processes specifically for AI/ML systems.
  • Successful track record of deploying and maintaining LLM and agent systems in production.

Responsibilities

  • Embed with enterprise teams to identify AI opportunities and architect systems that survive production.
  • Implement and evaluate data retrieval methodologies and model behaviors for trustworthiness.
  • Translate technical decisions into business outcomes and communicate effectively with stakeholders.
  • Lead client workshops and strategic discussions without needing an account manager.
  • Design context and specifications to optimize model outputs and efficiency.

Benefits

  • 100% remote work
  • Health, dental, and vision insurance
  • 401(k) with 4% match
  • Paid Time Off including vacation, sick leave, and holidays
  • Opportunities for career advancement and continuing education.
Full Job Description
The Position

Forward Deployed Engineers sit inside the client's problem, not next to it. You embed with an enterprise team, find the work that actually warrants AI, architect the system, build it, and stay long enough to make it survive contact with production.

This is a three-way role: consultant, operator, engineer. You should be as comfortable pressure-testing a business case with a COO or VP of Engineering as you are diagnosing why retrieval quality collapsed after a data refresh. The people who succeed here can hold a discovery conversation on Monday and ship what they scoped on Thursday.

On this track, your edge is data, retrieval, and model behavior: you make agents trustworthy by getting the data, context, and evaluation right.

We work with regulated industries and Fortune 500 clients who have AI mandates, real constraints, and low tolerance for demos that don't hold up.

What We Are Looking For

Engineering foundation

  • 8-10+ years across ML, data, and software engineering.
  • Python-first, production-grade (typed, tested, deployed services - not notebooks only); working proficiency in TypeScript / Node, .NET / C#, or Java is a plus.
  • Track record as an ML/Data Architect, Principal Engineer, or Tech Lead - can assess a data and AI current state and define a credible roadmap.
  • Has designed and owned CI/CD for AI or ML systems (LLMOps / MLOps), not just application code handed off to others.


Applied / operational AI

  • Has put LLM and agent systems into production and kept them running - not just proofs of concept or research models.
  • Deep fluency with retrieval and model behavior: embeddings, vector and hybrid search, reranking, structured output, model selection and routing; sound judgment on fine-tuning vs. prompting vs. retrieval.
  • Fluent with agentic tooling: Claude Code, agent frameworks, MCP, tool/function calling, multi-agent orchestration.
  • Context and spec engineering: designs what the model sees - retrieval, context construction, specifications, process definitions, and memory - for reliable, context-efficient output.
  • Day 2 experience: evaluation design (golden sets, LLM-as-judge, groundedness), observability, cost and token economics, failure-mode analysis.
  • Data and integration literacy: familiar with ETL/ELT patterns, warehouses/lakehouses (Snowflake, Databricks, BigQuery), and integration options (APIs, event streams, iPaaS, MCP) - enough to design around them, assess data readiness, and guide the data team. Does not need to be an ETL/ELT specialist.


Consulting & business

  • Demonstrates the discovery behaviors above: business and personal drivers, constraints, stakeholder alignment, strategic questioning.
  • Runs client conversations without an account manager in the room: workshops, proposal walkthroughs, hard questions, pushback.
  • Translates technical decisions into business outcomes - accuracy, cycle time, cost per transaction, risk reduction, ROI.
  • Exceptional written and verbal communication; credible in front of senior stakeholders.


What We Offer

  • Competitive Salary.
  • Paid Time Off (vacation, sick leave, parental leave, holidays).
  • 100% remote work.
  • The ability to work with leading startups and Fortune 500 companies.
  • Health, dental, and vision insurance.
  • 401(k) w/ 4% match.
  • Ample opportunity for career advancement.
  • Continuing education opportunities.

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