Field Application Engineer Manager, Cloud AI Infrastructure

Google LLC

Austin, Kirkland (TX, WA)

On-site

USD 236,000 - 329,000

Full time

7 days ago
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Benefits offered by this job

Health insurance and related benefits
401(k) with company match
Paid time off
Sick time
Maternity leave
Holidays

Job summary

Google Cloud accelerates organizations’ ability to digitally transform their business with the best infrastructure and expertise. Our AI Infrastructure Engineering Support team provides on-site advisory to customers as part of Field Application Engineer Management (Hardware Engineer) roles.

Join a team guiding AI hardware deployments, troubleshooting across hardware/software boundaries, and leading a group of engineers dedicated to delivering robust AI infrastructure solutions at scale.

Qualifications

  • Bachelor's degree in Computer Engineering, Electrical Engineering, Computer Science, or IT-related field, or equivalent practical experience.
  • 8 years of experience with Linux/Unix systems and debugging across the hardware/software boundary on enterprise-grade server infrastructure.
  • 5 years of experience in technical leadership.
  • 3 years of experience with technical infrastructure deployment, maintenance, and troubleshooting, and with quality and reliability of technical infrastructure.
  • 3 years of debug or validation experience with CPU, dGPU, or TPU.
  • Experience troubleshooting and triaging technical issues across the stack (hardware faults, low-level software, networking, virtualization, kernel drivers, firmware, or performance).

Responsibilities

  • Lead a team that will participate in on-call activities and provide leadership, mentorship, and career development for team members.
  • Manage customer problems through diagnosis, resolution, or new investigation tools to increase productivity on AI/ML infrastructure.
  • Work with Product, Quality, and Engineering teams and interact with SRE teams to drive high-quality attainment.
  • Develop understanding of AI/ML workloads and hardware architectures by troubleshooting and building tools for faster diagnosis.
  • Act as a consultant for internal stakeholders to resolve deployment and operational obstacles in AI infrastructure environments.

Skills

Linux/Unix
Technical leadership
System debugging
Infrastructure deployment
CPU/dGPU/TPU debugging
Troubleshooting across stack

Education

Bachelor's degree in Computer Engineering / CS / IT

Tools

Kubernetes
Slurm
Containers/Docker

Job description

corporate_fare Google place Austin, TX, USA ; Kirkland, WA, USA

X In accordance with Washington state law, we are highlighting our comprehensive benefits package, which is available to all eligible US based employees. Benefits for this role include:

  • Health, dental, vision, life, disability insurance
  • Retirement Benefits: 401(k) with company match
  • Paid Time Off: 20 days of vacation per year, accruing at a rate of 6.15 hours per pay period for the first five years of employment
  • Sick Time: 40 hours/year (increased to 69 hours/year for Seattle) including 5 discretionary sick days per instance
  • Maternity Leave (Short-Term Disability + Baby Bonding): 28-30 weeks
  • Baby Bonding Leave: 18 weeks
  • Holidays: 13 paid days per year

Note: By applying to this position you will have an opportunity to share your preferred working location from the following: Austin, TX, USA; Kirkland, WA, USA.

  • Bachelor's degree in Computer Engineering, Electrical Engineering, Computer Science, or IT-related field, or equivalent practical experience.
  • 8 years of experience with Linux/Unix systems and experience in debugging issues across the hardware/software boundary on enterprise-grade server infrastructure.
  • 5 years of experience in technical leadership.
  • 3 years of experience with technical infrastructure (e.g., deployment, maintenance, and troubleshooting), and with quality and reliability of technical infrastructure.
  • 3 years of debug or validation experience with CPU, dGPU, or TPU.
  • Experience troubleshooting and triaging technical issues across the stack (e.g., hardware faults, low-level software, networking, virtualization, kernel drivers, firmware, or performance).
Preferred qualifications:
  • Experience working directly with AI/ML computing hardware, including GPUs or other accelerators.
  • Experience with systems automation, and with systems design and debug.
  • Experience working with distributed systems, and familiarity with common solutions, design patterns, or best practices.
  • Experience with ML frameworks (e.g., TensorFlow, PyTorch), and understanding of the AI/ML training and inference lifecycle.
  • Advanced understanding of memory and high-speed IO technologies.
  • Familiarity with containerization and orchestration technologies like Kubernetes or Slurm in an on-prem or cloud environment.
About the job

Google Cloud accelerates organizations’ ability to digitally transform their business with the best infrastructure, platform, industry solutions and expertise. We deliver enterprise-grade solutions that leverage Google’s technology – all on the cleanest cloud in the industry. Customers in more than 200 countries and territories turn to Google Cloud as their trusted partner to enable growth and solve their most critical business problems. Our AI Infrastructure Engineering Support team is dedicated to ensuring our customers get the most out of their Google Cloud hardware investment. As a Field Application Engineer Manager (Hardware Engineer), your team will serve as on-site, external-facing trusted advisors to customers. Individual pay is determined by factors including job-related skills, experience, and relevant education or training.

US: $236000 - $329000 (USD) + 25% bonus target + equity + benefits

Learn more about benefits at Google .

  • Lead a team that will participate in on-call activities, working with the primary responders to resolve system observations. Provide leadership, mentorship, and career development for team members.
  • Manage customer problems through effective diagnosis, resolution, or implementation of new investigation tools to increase productivity on AI/ML infrastructure.
  • Work closely with multiple Product, Quality, and Engineering teams to improve the product, and interact with our Site Reliability Engineering (SRE) teams to drive high-quality attainment.
  • Develop an in-depth understanding of AI/ML workloads and underlying hardware architectures by troubleshooting, reproducing, determining the root cause for customer-reported issues, and building tools for faster diagnosis.
  • Act as a consultant and subject matter expert for internal stakeholders in Engineering, Sales, and customer organizations to resolve complex deployment and operational obstacles in AI infrastructure environments.

Google is proud to be an equal opportunity and affirmative action employer. We are committed to building a workforce that is representative of the users we serve, creating a culture of belonging, and providing an equal employment opportunity regardless of race, creed, color, religion, gender, sexual orientation, gender identity/expression, national origin, disability, age, genetic information, veteran status, marital status, pregnancy or related condition (including breastfeeding), expecting or parents-to-be, criminal histories consistent with legal requirements, or any other basis protected by law. See also Google's EEO Policy , Know your rights: workplace discrimination is illegal , Belonging at Google , and How we hire .

Google is a global company and, in order to facilitate efficient collaboration and communication globally, English proficiency is a requirement for all roles unless stated otherwise in the job posting.

Equity is granted exclusively and discretionarily by Alphabet Inc. on the basis of an agreement concluded between you and Alphabet Inc. Alphabet Inc. is your sole contractual partner with respect to equity grants. GSU grants are not guaranteed, are discretionary, are subject to approval by the Alphabet Inc. board of directors or its delegate, the terms of the relevant Alphabet Inc. stock plan, and your grant agreement. They have no impact on statutory payments. Current or past grants do not confer an acquired right.

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