Forward Deployed Engineer

Elmbrook Veterinary Clinic

$180K — $250K *
US-AnywhereRemote in United States
Technical Services
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 5-7 years of experience in engineering or research in AI/ML domains
  • Proficient in Python with a strong track record of deploying production systems
  • Experience with large language models (LLMs) and multi-turn workflows
  • Familiarity with data pipelines and machine learning infrastructure
  • Solid understanding of data quality and taxonomy design for AI systems
  • Ability to navigate ambiguous environments and maintain partner relationships

Responsibilities

  • Collaborate with leading AI labs to establish research objectives and project guidelines
  • Create large-scale data systems to organize and improve training datasets
  • Implement machine learning pipelines for data handling and model evaluation
  • Design taxonomies and labeling frameworks to enhance model performance
  • Develop applications for multi-agent systems and evaluation metrics
  • Work with research and engineering to translate AI challenges into technical workflows
  • Oversee full lifecycle of systems from architecture to partner success

Benefits

  • Up to 100% reimbursement for health insurance premiums
  • Paid time off and 401(K) plan with company match
  • Equity compensation and performance-based bonuses
  • Comprehensive benefits tailored for a remote-first workforce
Full Job Description
Job Description
  • Job Title: Forward Deployed Engineer
  • Job Type: Full-time
  • Location: Remote / Travel-required

The Role

We're hiring a Forward Deployed Engineer to work directly with the world's leading AI labs and enterprises as a technical research and implementation partner. This role sits at the intersection of applied AI, ML infrastructure, data intelligence, and partner-facing product development.

You'll help strategic partners define research directions, structure and curate high-quality data, implement ML and evaluation pipelines, and build the agentic systems that extend multi-turn agents and workflows in production. You should be comfortable moving between ambiguous research questions, technical architecture, hands-on engineering, and partner-facing execution.

What You'll Work On
  1. Work directly with leading AI labs and enterprise partners to define research goals, technical requirements, and project direction.
  2. Build large-scale data intelligence systems for collecting, organizing, evaluating, and improving training and evaluation data.
  3. Implement ML pipelines for data curation, model training, evaluation, experimentation, and continuous improvement.
  4. Design data taxonomies, labeling systems, and quality frameworks that improve dataset structure, model performance, and research outcomes.
  5. Develop LLM applications, including multi-agent systems, tool-using agents, RAG workflows, evaluation harnesses, and human-in-the-loop systems.
  6. Partner with research and engineering teams to translate ambiguous AI problems into scoped technical projects and production systems.
  7. Develop infrastructure for model inference, experimentation, evaluation, and deployment across frontier AI platforms.
  8. Build systems that help partners move from one-off AI experiments to reliable, repeatable, multi-turn agent workflows.
  9. Own systems across the full lifecycle, including discovery, architecture, implementation, deployment, reliability, iteration, and partner success.

What We're Looking For
  1. Able to operate independently in ambiguous, partner-facing settings with strong technical and product ownership.
  2. Strong Python engineer with experience building and shipping production systems end to end.
  3. Experience working with LLMs, agentic systems, multi-turn workflows, tool use, RAG, or AI automation.
  4. Built or maintained data pipelines, ML infrastructure, evaluation systems, or research workflows.
  5. Strong understanding of data quality, taxonomy design, labeling workflows, and dataset curation for AI systems.
  6. Comfortable working directly with technical partners, researchers, founders, and enterprise stakeholders.

Preferred Qualifications
  1. Background at a startup, AI infrastructure company, applied AI company, or research-focused engineering team.
  2. Experience building systems for multi-turn agents, agent evaluation, workflow automation, or human-in-the-loop AI.
  3. Experience designing data taxonomies, annotation systems, evaluation rubrics, or dataset quality pipelines.
  4. Experience acting as a technical partner to external customers, research teams, or strategic enterprise accounts.
  5. Familiarity with modern LLM tooling, agent frameworks, model evaluation stacks, and ML experimentation platforms.

Compensation & Benefits Notice

The national pay range for this full-time position is base salary of $180,000 -$250,000 USD. All employees are eligible for equity compensation, and employees may also receive performance-based bonuses, dependent on role and subject to company policies. micro1 provides a comprehensive benefits package, including up to 100% reimbursement for health-insurance premiums, paid time off, a 401(K) plan with a company match, and additional benefits designed to support a high-performing, remote-first workforce.

Qualifications

Additional Information

A very attractive and competitive package is offered.

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