Software Engineer, Infrastructure

The Consensus

San Francisco (CA)

Hybrid

USD 180,000 - 250,000

Full time

14 days+

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Benefits offered by this job

Relocation assistance
Health, dental, and vision insurance (
Team events & offsites
Learning & growth opportunities

Job summary

fal is the generative media ecosystem powering the next generation of AI products. We build infrastructure, tools, and model access to move from idea to production at scale.

You are a hands-on engineer who builds software and processes to keep a large fleet of GPU servers healthy and productive, writing systems and tooling for provisioning, health monitoring, error detection, and recovery. We are seeking a senior engineer to own fleet management, security, and performance tuning across 1000s of

Qualifications

  • 3+ years experience managing bare-metal and cloud based server fleets at scale (100+ nodes).
  • Strong software engineering skills in Python; you write production tooling, not scripts.
  • Deep Linux systems knowledge: boot process, kernel tuning, networking, storage, systemd, cgroups, namespaces, performance profiling.
  • Experience with configuration management and infrastructure-as-code: Ansible, Terraform, cloud-init.
  • Solid understanding of storage technologies: LVM, RAID, NVMe, NFS, Lustre or GPFS, and Linux I/O stack tuning.
  • Familiarity with hardware diagnostics and failure modes (GPUs, NVMe, NICs, memory).
  • Experience building internal tools or dashboards for infrastructure visibility.
  • Excellent communication and ability to drive technical decisions across teams.
  • Self-starter who executes quickly, takes ownership, and constantly seeks improvement.

Responsibilities

  • Build and maintain Python fleet tracking system that manages the full lifecycle of servers including contracting and procurement, target use, pricing, availability, health, RMAs, etc.
  • Build server management tooling that automates provisioning, health checks, GPU diagnostics, recovery and alerting.
  • Create and maintain metrics, dashboards, and alerting for hardware health across the fleet.
  • Leverage AI to an extreme level to build tools and automate alerting and recovery.
  • Implement and enforce OS-level security: hardening baselines, SELinux/AppArmor policies, SSH key management, vulnerability scanning, and compliance automation.
  • Manage and optimize distributed and local storage systems supporting model weights, checkpoints, and temporary scratch: NVMe arrays, NFS, parallel file systems, and object storage.
  • Tune Linux systems for AI workloads: kernel parameters, NUMA topology, CPU pinning, hugepages, I/O schedulers, and GPU driver stack optimization.
  • Develop a suite of automated error detection and recovery processes.
  • Work with partners to solve technical issues.

Skills

Python
Linux systems
Infrastructure as code
Ansible
Terraform
GPU infrastructure
Networking basics

Tools

PXE/iPXE
libvirt
Qemu/KVM
Docker
Kubernetes
SELinux/AppArmor

Job description

fal is the generative media ecosystem powering the next generation of AI products. We build the infrastructure, tools, and model access that teams need to move from idea to production, and do it at scale without compromise. For developers and enterprises, fal is the foundation that makes generative media not just possible, but practical: a unified platform where high-performance inference, orchestration, and observability come together to unlock new categories of AI-native products.

As generative media reshapes industries across a market projected to grow by hundreds of billions over the next decade, fal is becoming the ecosystem that ambitious teams build on.

You are a hands-on engineer who builds the software and processes that keep a large fleet of GPU servers healthy and productive. You write systems and tooling for managing 1000s of servers including provisioning, health monitoring, error detection, and recovery — and when something breaks that automation can’t fix, you drive resolution with partners.

Key responsibilities
  • Build and maintain Python fleet tracking system that manages the full lifecycle of servers including contracting and procurement, target use, pricing, availability, health, RMAs, etc

  • Build server management tooling that automates provisioning, health checks, GPU diagnostics, recovery and alerting

  • Create and maintain metrics, dashboards, and alerting for hardware health across the fleet (GPU errors, disk failures, network issues, thermals)

  • Leverage AI to an extreme level to build tools and automate alerting and recovery

  • Implement and enforce OS-level security: hardening baselines, SELinux/AppArmor policies, SSH key management, vulnerability scanning, and compliance automation

  • Manage and optimize distributed and local storage systems supporting model weights, checkpoints, and temporary scratch: NVMe arrays, NFS, parallel file systems, and object storage

  • Tune Linux systems for AI workloads: kernel parameters, NUMA topology, CPU pinning, hugepages, I/O schedulers, and GPU driver stack optimization (NVIDIA drivers, CUDA, container runtimes)

  • Develop a suite of automated error detection and recovery processes

  • Work with partners to solve technical issues

Requirements
  • 3+ years experience managing bare-metal and cloud based server fleets at scale (100+ nodes)

  • Strong software engineering skills in Python; you write production tooling, not scripts

  • Deep Linux systems knowledge: boot process, kernel tuning, networking, storage, systemd, cgroups, namespaces, performance profiling

  • Strong experience with configuration management and infrastructure-as-code: Ansible, Terraform, cloud-init

  • Solid understanding of storage technologies: LVM, RAID, NVMe, NFS, Lustre or GPFS, and Linux I/O stack tuning

  • Familiarity with hardware diagnostics and failure modes (GPUs, NVMe, NICs, memory)

  • Experience building internal tools or dashboards for infrastructure visibility

  • Excellent communication and ability to drive technical decisions across teams

  • Self-starter who executes quickly, takes ownership, and constantly seeks improvement

Nice to have
  • Familiarity with network configuration and diagnostics (VLAN, VXLAN, ECMP, BGP, tcpdump)

  • Experience with NVIDIA GPU infrastructure: driver management, health monitoring, DCGM, NVLink/NVSwitch diagnostics, RDMA, InfiniBand/RoCEv2

  • Experience with AMD GPUs

  • Experience with bare metal and VM provisioning (PXE/iPXE, Kickstart, libvirt, Qemu/KVM)

  • Experience with compliance frameworks relevant to cloud providers (SOC 2, ISO 27001)

Compensation
  • $180,000-250,000 plus equity + benefits

Location
  • San Francisco, CA (we are open to remote in the US for Senior and Staff levels)

What we offer at fal
  • Interesting and challenging work

  • A lot of learning and growth opportunities

  • We are offering relocation assistance to San Francisco.

  • We offer relocation assistance to San Francisco.

  • Health, dental, and vision insurance (US)

  • Regular team events and offsites

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