Forward Deployed Engineer - AI Inference

Posted 9 Hours Ago
San Francisco, CA, USA
Hybrid
Mid level
Artificial Intelligence • Cloud • Generative AI • Infrastructure as a Service (IaaS)
The Role
Deploy and operate production generative AI and agentic workloads for enterprise customers. Design large-scale LLM and multimodal inference architectures, manage Kubernetes-based deployments, troubleshoot performance issues, integrate infrastructure into CI/CD workflows, and develop reusable Helm, Terraform, and automation solutions. Collaborate with customer engineering teams, contribute to platform reliability and observability strategies, and lead technical workshops on AI infrastructure best practices.
Summary Generated by Built In

About the job

FriendliAI is seeking a Forward Deployed Engineer to assist enterprises in deploying, scaling, and operating generative and agentic AI workloads on FriendliAI infrastructure. You will work directly with customers to solve and implement production-grade applications using our products, such as Serverless Endpoints, Dedicated Endpoints, or Container.

Friendli Container is our service that allows customers to download our inference engine as Docker images and deploy it in their chosen environment, such as private clouds or on-premises. Our Friendli Container can be adopted directly to AWS EKS clusters using our EKS add-on product.

You will work directly on our customers’ projects, collaborating with their engineering teams to solve AI inference challenges like scaling, orchestration, and monitoring. This is a hands-on, customer-embedded role. If you have worked in DevOps, platform engineering, or SRE for AI applications, this is your ideal position.

Key Responsibilities

  • Design and implement large-scale deployment architectures for LLM and multimodal inference

  • Deploy and manage containerized workloads across Kubernetes clusters

  • Diagnose production issues, such as performance bottlenecks, and implement temporary fixes as needed

  • Collaborate with customers’ DevOps teams to integrate FriendliAI’s infrastructure into their CI/CD workflows

  • Develop scripts, Helm charts, and Terraform modules that simplify repeated deployments

  • Contribute field insights to shape our platform reliability, observability, and scaling strategies

  • Lead workshops, technical sessions, or webinars to help customers master infrastructure best practices.

Qualifications

  • 3+ years of experience in cloud infrastructure, DevOps, or reliability engineering

  • Bachelor’s or Master's degree in Computer Science, Computer Engineering, Electrical Engineering, or equivalent

  • Proficiency with Kubernetes, Docker, Terraform, and Helm

  • Strong foundation in distributed systems, networking, and performance tuning

  • Experience with GPU-based computing and generative AI model serving workloads

  • Strong technical background in backend systems or AI tooling

  • Experience operating workloads on AWS, GCP, or OCI

  • Excellent problem-solving and debugging skills in real-world environments

Preferred Experience

  • Experience deploying large models (LLMs, diffusion models) on GPUs or clusters

  • Familiarity with inference frameworks (Triton, vLLM, TensorRT, DeepSpeed-Inference)

  • Familiarity with observability stacks (Prometheus, Grafana, Loki, ELK, OTEL)

  • Understanding of networking security and compliance frameworks (e.g., SOC 2)

  • Experience supporting on-prem or hybrid-cloud deployments

Benefits

  • A front-row seat to the generative AI infrastructure revolution

  • Competitive compensation and benefits package

  • Daily lunch and dinner provided; unlimited snacks and beverages

  • Health check-up and top-tier hardware support

  • Flexible working hours and a highly collaborative environment

About us

FriendliAI is the fastest inference cloud for agents, built to run frontier open-weight models in production at scale. It delivers up to 7x faster output token speed, up to 90% lower inference costs, and 99.99% uptime across the most demanding agent workloads — long-context inference, real-time streaming, and accurate tool calling.

We are a small, fast-moving team doing work that matters at one of the most exciting moments in the history of technology. With our world-class inference stack, we are building the platform teams can actually rely on.

Skills Required

  • 3+ years of experience in cloud infrastructure, DevOps, or reliability engineering
  • Bachelor's or Master's degree in Computer Science, Computer Engineering, Electrical Engineering, or equivalent
  • Proficiency with Kubernetes, Docker, Terraform, and Helm
  • Strong foundation in distributed systems, networking, and performance tuning
  • Experience with GPU-based computing and generative AI model serving workloads
  • Strong technical background in backend systems or AI tooling
  • Experience operating workloads on AWS, GCP, or OCI
  • Excellent problem-solving and debugging skills in real-world environments
  • Experience deploying large models, including LLMs or diffusion models, on GPUs or clusters
  • Familiarity with inference frameworks such as Triton, vLLM, TensorRT, or DeepSpeed-Inference
  • Familiarity with observability stacks such as Prometheus, Grafana, Loki, ELK, or OTEL
  • Understanding of networking security and compliance frameworks such as SOC 2
  • Experience supporting on-premises or hybrid-cloud deployments
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The Company
34 Employees
Year Founded: 2021

What We Do

FriendliAI is The Frontier AI Inference Cloud: an AI infrastructure platform that deploys, scales, and monitors large language and multimodal models. Its inference engine maximizes GPU utilization to deliver faster performance and steep cost savings for open-weight and custom models, while offering enterprise-grade reliability, SLAs, and compliance to help teams run generative AI and agent workloads at production scale.

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