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Overview

Company
Sun Recruiting
Location
all cities, RI 40
Employment type
On-site
  • Strategic Alliance Operations Specialist - Google Cloud (40)
  • Administrative & Tax Operations Specialist (40)
  • Adjuncts - Emergency Services (40)
  • Principal AI Product Engineer (40)
  • Senior Director, Marketing Danaher Business System (40)
  • Director of Engineering, Analytics Platform & Products (40)
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S
Sun RecruitingVerified Employer

Business Services & Consulting • all cities, RI 40

AI Engineer (40)

all cities, RI 40On-sitePosted 1 hour ago
Business Services & Consulting

About the Role

AI Engineer (Enterprise)

We're partnering with a high-growth, late-stage AI infrastructure company to hire multiple AI Field Engineers (Enterprise) who can sit at the intersection of deep generative AI engineering and complex enterprise customer work. This is a customer-facing, hands-on role where you'll turn ambitious GenAI ideas into production systems for some of the most sophisticated organizations in the world.

Why This Role Is Compelling
  • Late-stage AI infra company with recent major funding and strong conviction from top-tier investors; well-capitalized and scaling quickly.

  • OTE in the ~220K–280K range with meaningful equity in a ~200-person business where ownership can still move the needle.

  • Remote-friendly across the US, with hubs on both coasts and regular travel to marquee enterprise customers.

  • Urgent hiring need with a highly engaged hiring team, targeting multiple hires in this function over the near term.

What You'll Be Doing
  • Lead technical discovery with enterprise customers, scope POCs, and run load tests/evaluations to validate the right model architectures and deployment setups.

  • Build end-to-end POCs and production integrations directly inside customer environments, working through infra, security, and compliance constraints to get systems live.

  • Advise customers on model selection and fine-tuning strategies (e.g., SFT, DPO, RFT) and design evaluation frameworks that get them from experimentation to production at scale.

  • Own the technical relationship across complex accounts — identify champions, handle detractors, and align stakeholders to keep deals and deployments moving.

  • Feed recurring patterns and customer pain points back into the product and engineering org as a direct loop from field to roadmap.

What You've Done
  • 3+ years in customer-facing AI/ML or infrastructure roles (Field Engineer, Applied AI Engineer, Solutions Architect, ML Engineer, or similar) with a track record of owning technical workstreams in enterprise accounts.

  • Shipped real AI/ML production code into customer environments — not just slideware or advisory engagements.

  • Hands-on experience with LLM inference and/or training using open-model frameworks (for example, modern serving stacks and fine-tuning workflows such as SFT; exposure to more advanced approaches like DPO or RFT is a strong plus).

  • Strong Python, plus comfort with GPUs and cloud infrastructure (AWS, Azure, or GCP) and container/orchestration tools such as Kubernetes.

  • Demonstrated executive-level presence: you can dive deep with an engineer and explain trade-offs to senior leadership in the same day.

What They're Not Looking For
  • Profiles whose LLM experience is limited to closed-model APIs and wrapper libraries without real exposure to open-model inference or fine-tuning.

  • Purely advisory or research-only backgrounds without evidence of shipping production systems.

  • Pure Big Tech careers with little to no startup, field, or high-velocity customer-facing experience.

Location, Travel, and Structure
  • US-based, remote-friendly role with the option to work from coastal hubs if desired.

  • Regular domestic travel to enterprise customers for discovery, POCs, and production rollout support.

  • Visa support available for select categories, including common transfer paths for experienced engineers.

AI Engineer (Enterprise)

We're partnering with a high-growth, late-stage AI infrastructure company to hire multiple AI Field Engineers (Enterprise) who can sit at the intersection of deep generative AI engineering and complex enterprise customer work. This is a customer-facing, hands-on role where you'll turn ambitious GenAI ideas into production systems for some of the most sophisticated organizations in the world.

Why This Role Is Compelling
  • Late-stage AI infra company with recent major funding and strong conviction from top-tier investors; well-capitalized and scaling quickly.

  • OTE in the ~220K–280K range with meaningful equity in a ~200-person business where ownership can still move the needle.

  • Remote-friendly across the US, with hubs on both coasts and regular travel to marquee enterprise customers.

  • Urgent hiring need with a highly engaged hiring team, targeting multiple hires in this function over the near term.

What You'll Be Doing
  • Lead technical discovery with enterprise customers, scope POCs, and run load tests/evaluations to validate the right model architectures and deployment setups.

  • Build end-to-end POCs and production integrations directly inside customer environments, working through infra, security, and compliance constraints to get systems live.

  • Advise customers on model selection and fine-tuning strategies (e.g., SFT, DPO, RFT) and design evaluation frameworks that get them from experimentation to production at scale.

  • Own the technical relationship across complex accounts — identify champions, handle detractors, and align stakeholders to keep deals and deployments moving.

  • Feed recurring patterns and customer pain points back into the product and engineering org as a direct loop from field to roadmap.

What You've Done
  • 3+ years in customer-facing AI/ML or infrastructure roles (Field Engineer, Applied AI Engineer, Solutions Architect, ML Engineer, or similar) with a track record of owning technical workstreams in enterprise accounts.

  • Shipped real AI/ML production code into customer environments — not just slideware or advisory engagements.

  • Hands-on experience with LLM inference and/or training using open-model frameworks (for example, modern serving stacks and fine-tuning workflows such as SFT; exposure to more advanced approaches like DPO or RFT is a strong plus).

  • Strong Python, plus comfort with GPUs and cloud infrastructure (AWS, Azure, or GCP) and container/orchestration tools such as Kubernetes.

  • Demonstrated executive-level presence: you can dive deep with an engineer and explain trade-offs to senior leadership in the same day.

What They're Not Looking For
  • Profiles whose LLM experience is limited to closed-model APIs and wrapper libraries without real exposure to open-model inference or fine-tuning.

  • Purely advisory or research-only backgrounds without evidence of shipping production systems.

  • Pure Big Tech careers with little to no startup, field, or high-velocity customer-facing experience.

Location, Travel, and Structure
  • US-based, remote-friendly role with the option to work from coastal hubs if desired.

  • Regular domestic travel to enterprise customers for discovery, POCs, and production rollout support.

  • Visa support available for select categories, including common transfer paths for experienced engineers.

What You'll Do

Late-stage AI infra company with recent major funding and strong conviction from top-tier investors; well-capitalized and scaling quickly.
OTE in the ~220K–280K range with meaningful equity in a ~200-person business where ownership can still move the needle.
Remote-friendly across the US, with hubs on both coasts and regular travel to marquee enterprise customers.
Urgent hiring need with a highly engaged hiring team, targeting multiple hires in this function over the near term.
Lead technical discovery with enterprise customers, scope POCs, and run load tests/evaluations to validate the right model architectures and deployment setups.
Build end-to-end POCs and production integrations directly inside customer environments, working through infra, security, and compliance constraints to get systems live.

Skills & Technologies

Business Services & Consulting

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