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Vast.ai

Technical Support Engineer II (Linux)

Los Angeles

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hirly's read of this role

Role family
Customer support
Seniority
Mid level
Stated salary
$90,000 – $130,000 per year
Country
US
Work mode
On-site / unstated
First seen by hirly
28 Sept 2026

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the posting

About Us

Vast.ai 's cloud powers AI projects and businesses all over the world. We are democratizing and decentralizing AI computing — reshaping our future for the benefit of humanity. Our mission is to organize, optimize, and orient the world's computation.

We value elegance, ownership, integrity, and continuous learning. You'll have the opportunity to dive into state-of-the-art AI systems while collaborating with a globally distributed team.

About the Role

This is a technical support role focused on escalated infrastructure issues that go beyond frontline triage. You'll be the engineering resource our L1 support team leans on when tickets get complex: diagnosing and resolving issues across the full stack — hardware/BIOS/firmware, networking, Ubuntu, Docker, NVIDIA CUDA/GPU, and virtualization (KVM).

You'll handle higher-complexity issues, own escalation resolution end-to-end, and contribute to internal documentation and runbooks. The best engineers in this role don't just resolve tickets — they build the tooling and runbooks that eliminate recurring ones. You'll collaborate directly with the engineering team and host support team on systemic issues.

Strong technical depth and support experience are the primary requirements. You should be comfortable working autonomously across Ubuntu environments, diagnosing container and GPU issues, and communicating findings clearly to both technical and non-technical audiences.

Vast.ai users or hosts strongly preferred.

  • This role is full-time and onsite in our office in Westwood (LA)
  • Schedule: Sunday - Thursday.

Key Responsibilities

Handle escalated support tickets, including GPU workload failures, container issues, networking problems, account infrastructure, and host-side configuration

Diagnose and resolve issues across Docker, NVIDIA CUDA/GPU drivers, and virtualization environments (KVM)

Troubleshoot network-layer issues: VLAN, DNS, DHCP, VPN, NAT, firewall rules, and connectivity failures on host machines

Investigate performance issues on GPU utilization, container resource constraints, thermal throttling, driver conflicts, disk I/O bottlenecks

Advise suppliers (hosts) on installation best practices — hardware setup, driver configuration, BIOS/firmware settings, and network configuration for optimal performance

Provide managed support for supplier onboarding and ongoing machine management, acting as a technical resource through installation, configuration, and post-setup troubleshooting

Write and maintain internal runbooks, escalation guides, and knowledge base articles to reduce repeat escalations

Build diagnostic and automation tooling in Python and Bash to reduce manual triage overhead

Collaborate with the engineering team and infrastructure support team to flag and document systemic or recurring platform issues

Assist clients and infrastructure suppliers working with AI frameworks (TensorFlow, PyTorch) and GPU-accelerated workloads

Provide coverage for L1 support team overflow during peak periods or incidents, per a defined on-call rotation

You Are

Fluent in Linux — you navigate systems, read logs, and solve problems from the command line without hesitation

Methodical and thorough: you gather data, dig into root causes, and don't settle for surface-level fixes

A self-starter who can manage a queue of complex tickets with minimal supervision

Adaptable to a defined on-call rotation which may include weekend coverage

A clear written communicator: able to explain technical findings and write useful internal documentation

Genuinely curious about AI infrastructure, GPU computing, and distributed systems

Must-Haves

Solid Linux SysOps experience: Ubuntu Server, RHEL/CentOS, Debian; comfortable with systems, networking, storage, and permissions

Proficiency with Docker: container debugging, Docker Compose, image management, cgroup resource limits, Docker storage/filesystem management

Experience with virtualization: Proxmox VE, VMware, or similar hypervisors; provisioning and troubleshooting VMs

Networking fundamentals: VLAN, DNS, DHCP, NAT, VPN, firewall rules, and general L2/L3 troubleshooting

Hands-on experience with NVIDIA GPU drivers, CUDA, and GPU workload troubleshooting (essential)

Scripting in Python and Bash for automation and diagnostic tooling

Strong English written communication: clear, professional, and technically precise

Experience providing technical support in a customer-facing or internal helpdesk context

Ability to prioritize across a concurrent queue of escalated tickets, triaging by severity and customer impact, balancing reactive resolution against proactive documentation and tooling work, and making clear judgment calls on when to escalate versus own resolution end-to-end

Nice-to-Haves

Familiarity with AI/ML frameworks (TensorFlow, PyTorch) and running GPU-accelerated containers

Monitoring and observability experience (Prometheus, Grafana)

Relevant certifications: RHCSA, CompTIA Linux+, or similar

Knowledge of the Vast.ai platform as a client or infrastructure supplier

Annual Salary Range

$90,000 – $150,000 + equity + benefits

Vast.ai is hiring across all experience levels with compensation commensurate with background, experience and potential.

Benefits

Comprehensive health, dental, vision, and life insurance

401(k) with company match

Meaningful early-stage equity

Onsite meals, snacks, and close collaboration with founders/tech leaders

Ambitious, fast-paced startup culture where initiative is rewarded

Original posting on Vast.ai's site ↗

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