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AI Field Engineer (Enterprise)

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AI Summary

Embed with enterprise customers to turn complex GenAI challenges into production systems. Lead technical discovery calls, scope POCs, and run load tests and evaluations. Manage multi-stakeholder enterprise relationships.

Key Highlights
Lead technical discovery calls and scope POCs
Run load tests and evaluations to validate model architecture and deployment configuration
Manage multi-stakeholder enterprise relationships
Key Responsibilities
Lead technical discovery calls, scope POCs, and run load tests and evaluations to validate the right model architecture and deployment configuration for each enterprise customer
Build end-to-end POCs and production integrations hands-on-keyboard inside customer environments, navigating their infrastructure, security requirements, and organizational constraints
Guide customers on model selection, fine-tuning strategy, and evaluation frameworks — moving them from open-model exploration to production at scale
Manage multi-stakeholder enterprise relationships — identifying technical champions, navigating org politics, and aligning the right people to move deals forward quickly
Technical Skills Required
Python Kubernetes LLM serving frameworks
Benefits & Perks
Salary $176K - $224K Base (OTE: $220K - $280K)
Variable component paid quarterly based on individual and team performance
Meaningful equity included on top of OTE
Competitive equity
Visa Sponsorship
H-1B transfers and TN visas sponsored
O-1 considered on a case-by-case basis
Remote Work Policy
US-based, remote-friendly
Offices in San Mateo, CA and New York, NY

Job Description


Job DescriptionAI Field Engineer - Enterprise


Employment Type: Full-time

Work Mode: Hybrid (US-based, remote-friendly)

Location: San Mateo, CA / New York, NY

Compensation: $176K - $224K Base (OTE: $220K - $280K)

Seniority: 3+ Years Experience


Seniority
  • 3+ years of experience in customer-facing AI/ML field engineering (FDE, Applied AI, Solutions Architect, AI Infra, ML Engineer, Software Engineer with pre-sales exposure, or research backgrounds transitioning to customer-facing roles)


Work Experience
  • Shipped AI/ML production code inside a customer's environment
  • Hands-on LLM inference and fine-tuning experience — ran SFT pipelines, benchmarked latency, and tuned open-model deployments
  • Ran the full field cycle in a pre-sales or customer-facing capacity — discovery, POC scoping, load tests, evals, and model selection
  • Background at an AI-native/AI-infra startup (inference, MLOps, developer tooling) or enterprise SaaS with built-in AI features


Hard Skills
  • LLM serving frameworks (vLLM, SGLang, TensorRT-LLM), agents, inference trade-offs, terminal-comfortable
  • Python and Kubernetes proficiency
  • Trained open models and familiar with fine-tuning methodologies (SFT, DPO, RFT)
  • GPU optimization for LLM workloads
Soft Skills
  • Demonstrated executive presence in enterprise customer-facing roles
  • Navigated enterprise org politics end-to-end — champions, detractors, security reviews, and procurement cycles
  • Miscellaneous
  • Domestic travel to enterprise customers as needed


About This Role

We are looking for an AI Field Engineer (Enterprise) with 3+ years of experience to embed with enterprise customers and turn complex GenAI challenges into production systems — fast. You'll be the technical tip of the spear, pairing deep hands-on engineering with the executive presence to earn trust across large organizations and drive deals from first discovery call to production deployment.


What Will You Be Doing?
  • Lead technical discovery calls, scope POCs, and run load tests and evaluations to validate the right model architecture and deployment configuration for each enterprise customer
  • Build end-to-end POCs and production integrations hands-on-keyboard inside customer environments, navigating their infrastructure, security requirements, and organizational constraints
  • Guide customers on model selection, fine-tuning strategy (SFT, DPO, RFT), and evaluation frameworks — moving them from open-model exploration to production at scale
  • Manage multi-stakeholder enterprise relationships — identifying technical champions, navigating org politics, and aligning the right people to move deals forward quickly
  • Feed recurring customer pain points and deployment patterns back into the product roadmap, acting as a direct feedback loop between the field and engineering
RequirementsKey Requirements
  • Deep hands-on experience with LLM inference and/or training — working knowledge of open-model frameworks (vLLM, SGLang, TensorRT-LLM) and fine-tuning workflows (SFT at minimum; DPO/RFT a strong plus); candidates with only closed-model/API-wrapper experience will not clear the bar
  • Proven ability to ship production code inside a customer's environment — not just advisory work; you've built and deployed POCs/MVPs that ran in someone else's prod system
  • Strong Python skills plus GPU/cloud infrastructure experience (AWS, Azure, or GCP) and comfort with Kubernetes
  • Executive presence and enterprise navigation skills — able to run a technical deep-dive with an ML engineer and present architecture trade-offs to a VP in the same afternoon
  • Pre-sales or customer-facing field engineering experience (FDE, Applied AI Engineer, Solutions Architect, or similar); pure software engineers without customer-facing exposure are not a fit


Compensation & Benefits
  • Salary
  • $176K - $224K Base
  • OTE: $220K - $280K
  • Variable component paid quarterly based on individual and team performance
  • Compensation scales with experience
  • Candidates with 10+ years may be considered for above-range packages
  • Meaningful equity included on top of OTE


Equity
  • Competitive equity


Visa Sponsorship
  • H-1B transfers and TN visas sponsored
  • O-1 considered on a case-by-case basis


Remote Work Policy
  • US-based, remote-friendly
  • Offices in San Mateo, CA and New York, NY
  • Role requires regular on-site travel to enterprise customers
  • Hybrid policy (Mon/Wed/Fri in-office) applies for those based near a hub


Tech Stack
  • Python
  • vLLM
  • SGLang
  • TensorRT-LLM
  • Kubernetes
  • AWS
  • Azure
  • GCP
  • Azure AI Foundry
  • AWS Bedrock
  • AWS SageMaker
  • GCP Vertex AI
  • LLM Fine-Tuning (SFT, DPO, RFT)
  • GPU Infrastructure
  • Open-source LLM frameworks

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