Network Engineering and Operation Manager

ZoomSan Jose, CA
$146,700 - $339,300Hybrid

About The Position

This role leads global network infrastructure and data center operations supporting over 10,000 employees and AI/ML training infrastructure. The manager oversees a team of 13 globally distributed network engineers and data center technicians. The team is operating in a follow-the-sun model to provide continuous coverage, while partnering closely with the Network and Infrastructure Architects to execute strategic initiatives.

Requirements

  • Hold a BS/MS in Computer Science or equivalent experience.
  • Have 10+ years in network engineering with 5+ years managing distributed technical teams.
  • Be proficient in network operations best practices, network reliability and uptime, and deep Zero Trust security expertise.
  • Have hands-on experience with AI/ML infrastructure, high-performance networking, cloud interconnectivity, and network observability platforms.
  • Have proven experience leading large-scale infrastructure projects.
  • Willingness to participate in on-call rotation while maintaining both leadership responsibilities and hands-on technical involvement transforming a team.
  • Have excellent communication and stakeholder management skills with ability to influence without authority and translate complex technical concepts for executive stakeholders and non-technical audiences.

Responsibilities

  • Managing global network infrastructure with BGP and OSPF routing protocols.
  • Architecting cloud connectivity across AWS and GCP to ensure network reliability and uptime for users worldwide.
  • Implementing and maintaining Zero Trust network architecture in partnership with security architects. This includes identity verification, least-privilege access, micro-segmentation, and continuous authentication across network, data center, and cloud environments.
  • Collaborating with SOC and security teams on threat detection and vulnerability management, while developing comprehensive security policies for sensitive data flows and high-value assets.
  • Driving Lab, build and AI training infrastructure, providing high-performance, low-latency networks for GPU clusters supporting distributed ML workloads with 100+ GPUs.
  • Optimizing network topology for collective communications, managing storage networking for high-throughput data pipelines.
  • Overseeing data center operations supporting dense GPU deployments with specialized power and cooling requirements.
  • Coordinating megawatt-scale capacity planning and leads data center migrations while considering long-running training jobs.

Benefits

  • bonus
  • equity value
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