Software Engineer - Cloud Infrastructure

Posted 11 Days Ago
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Seoul, KOR
In-Office
Senior level
Artificial Intelligence • Cloud • Generative AI • Infrastructure as a Service (IaaS)
The Role
Design, build, and operate a multi-cluster, multi-tenant Kubernetes fleet for GPU inference. Own cluster architecture, custom controllers and CRDs, GPU scheduling, autoscaling, Kubernetes networking (CNI, IPAM, DNS, load balancing), cross-cluster connectivity, service mesh, and reliability SLOs. Deliver infrastructure-as-code and collaborate with platform, SRE, and security teams to support latency-sensitive, high-traffic inference workloads.
Summary Generated by Built In
About the job

FriendliAI is looking for a Cloud Infrastructure Engineer to own the architecture and evolution of the cluster platform behind our GPU-accelerated AI inference cloud. As a Software Engineer, Cloud Infrastructure, you will design how our clusters are built and connected, extend Kubernetes where its defaults fall short, and own the network path that inference traffic depends on.

Inference is an unforgiving workload for Kubernetes. Traffic is bursty and latency-sensitive, GPU capacity is scarce and inelastic, tenants must stay isolated, and multi-node serving depends on the network holding up under sustained load. This is a hands-on architecture role for an engineer who has already run large clusters in production and wants to push them further.

Key Responsibilities

Cluster Architecture

  • Own the architecture of our multi-cluster, multi-tenant Kubernetes fleet across both managed and self-managed clusters: cluster topology, control plane and etcd lifecycle, and zero-downtime upgrades.

  • Extend Kubernetes with custom controllers, operators, and CRDs so platform behavior is encoded in software rather than runbooks.

  • Design GPU scheduling and capacity strategy, including topology-aware placement, node pools, priority and preemption, and quota across tenants.

  • Build autoscaling that matches inference traffic: queue-driven pod scaling, node autoscaling, scale-to-zero, and cold-start reduction.

Networking

  • Own the Kubernetes network data plane: CNI, IPAM, DNS, ingress, and L4/L7 load balancing.

  • Design cross-AZ, cross-region, and cross-cluster connectivity, and operate the service mesh for routing, mTLS, and traffic policy.

  • Debug production network issues (packet loss, conntrack exhaustion, MTU mismatches, DNS latency, load balancer behavior) and drive permanent fixes.

Reliability & Collaboration

  • Define SLOs for platform-critical systems and lead post-incident hardening.

  • Deliver infrastructure as code with Terraform, Helm, and GitOps.

  • Partner with the inference engine, platform, SRE, and security teams to turn serving requirements into platform capabilities.

Qualifications
  • 5+ years designing, building, and operating large-scale Kubernetes infrastructure in production.

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

  • Proven experience operating large-scale, high-traffic network services in production.

  • Deep understanding of Kubernetes internals: API server, scheduler, controller loops, kubelet, and etcd.

  • Strong command of Kubernetes and cloud networking: CNI, kube-proxy/eBPF datapaths, DNS, load balancing, service mesh, and VPC routing.

  • Proficiency with AWS, Terraform, Helm, and Ansible.

  • Programming skills in Go or Python, with the ability to build infrastructure tooling and automation.

  • Strong debugging skills across distributed systems, containers, and the Linux networking stack.

  • Clear written and verbal communication, including the ability to document architectural decisions for other engineers.

Preferred Experience
  • Large-scale Kubernetes operations in a high-traffic domain such as gaming, e-commerce, or public cloud.

  • Cilium and eBPF, including kube-proxy replacement or upstream contributions.

  • Cluster provisioning and lifecycle management with Kubespray or similar Ansible-based tooling.

  • GPU orchestration: NVIDIA GPU Operator, device plugins, or Dynamic Resource Allocation (DRA).

  • High-performance networking for distributed workloads: RDMA/RoCE, InfiniBand, EFA, SR-IOV, or NCCL tuning.

  • Multi-cloud, hybrid-cloud, or bare-metal Kubernetes operations.

  • Contributions to Kubernetes, Cilium, Istio, or other CNCF projects.


Benefits
  • Flexible working hours

  • Daily lunch and dinner provided; unlimited snacks and beverages

  • Supportive and highly collaborative work environment

  • Health check-up support and top-tier equipment/hardware support

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

  • Competitive compensation, startup equity, health insurance, and other benefits.

About FriendliAI

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

  • 5+ years designing, building, and operating large-scale Kubernetes infrastructure in production
  • Bachelor's or Master's degree in Computer Science, Computer Engineering, Electrical Engineering, or equivalent
  • Proven experience operating large-scale, high-traffic network services in production
  • Deep understanding of Kubernetes internals: API server, scheduler, controller loops, kubelet, and etcd
  • Strong command of Kubernetes and cloud networking: CNI, kube-proxy/eBPF datapaths, DNS, load balancing, service mesh, and VPC routing
  • Proficiency with AWS, Terraform, Helm, and Ansible
  • Programming skills in Go or Python to build infrastructure tooling and automation
  • Strong debugging skills across distributed systems, containers, and the Linux networking stack
  • Clear written and verbal communication, including documenting architectural decisions
  • Large-scale Kubernetes operations in high-traffic domains (gaming, e-commerce, public cloud)
  • Cilium and eBPF experience, including kube-proxy replacement or upstream contributions
  • Cluster provisioning and lifecycle management with Kubespray or similar Ansible-based tooling
  • GPU orchestration: NVIDIA GPU Operator, device plugins, or Dynamic Resource Allocation (DRA)
  • High-performance networking for distributed workloads: RDMA/RoCE, InfiniBand, EFA, SR-IOV, or NCCL tuning
  • Multi-cloud, hybrid-cloud, or bare-metal Kubernetes operations
  • Contributions to Kubernetes, Cilium, Istio, or other CNCF projects
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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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