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VP of Engineering

Job in San Francisco, San Francisco County, California, 94199, USA
Listing for: Hyphen Connect
Full Time position
Listed on 2026-07-19
Job specializations:
  • IT/Tech
    Cloud Computing: Infrastructure & Operations, SRE/Site Reliability, Systems Engineer, IT Infrastructure
Salary/Wage Range or Industry Benchmark: 260000 USD Yearly USD 260000.00 YEAR
Job Description & How to Apply Below

Our Client is an AI company working on revolutionizing the AI landscape with our GPU marketplace and AI inference service, making high-performance computing affordable and accessible to all. They are hiring an Executive Engineering hire (SF, Hybrid) to building the Infrastructure, Platform, and SRE functions from the ground up.

Key Responsibilities
  • Lead the design and evolution of the AI cloud platform architecture — GPU orchestration, compute scheduling, networking, storage, and distributed systems
  • Build and scale large GPU clusters supporting customer workloads, including GPU provisioning, scheduling, utilization optimization, and capacity management
  • Personally participate in architecture reviews, system design, and key technical initiatives (expect 40%+ of time on technical contribution)
  • Act as the technical escalation point for complex infrastructure challenges — debug production issues, review proposals, and drive decisions
  • Establish best practices for Kubernetes, observability, CI/CD, security, and operational excellence
  • Build SRE and Platform Engineering functions from scratch — define SLOs, SLIs, incident response, and capacity planning
  • Recruit and develop world-class Infrastructure, Platform, and SRE teams
  • Partner with executive leadership on company strategy and infrastructure investments
  • Manage infrastructure budgets, vendor relationships, and capacity planning
Requirements
  • 12+ years building and operating large-scale infrastructure systems, with experience leading infrastructure organizations while remaining deeply hands-on technically.
  • Previous experience building or operating a cloud platform at scale — ideally GPU-native cloud infrastructure supporting AI training and inference workloads
  • Expert-level Kubernetes knowledge and experience designing multi-region cloud infrastructure
  • Deep expertise in Linux, networking, distributed systems, and storage architecture
  • Proven track record scaling infrastructure in high-growth startup environments — not just maintaining systems at large companies
  • Strong understanding of Infrastructure-as-Code, automation frameworks, observability, monitoring, and reliability engineering
  • Experience building highly available production systems with clear SLOs and incident response processes
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