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Google

Practice Specialist, Machine Learning and Infrastructure, Google Cloud (English, Korean)

Seoul, South Korea

Minimum qualifications:

  • Bachelor's degree in Computer Science, Mathematics, a related technical field, or equivalent practical experience.
  • 5 years of experience in machine learning algorithms, statistical analysis, data mining, and model evaluation.
  • Experience with large language models, multimodal models, and other generative AI techniques, including their architecture, training methodologies, and fine-tuning.
  • Experience with open-source ML tools (e.g., Weights, and Biases, and other libraries).
  • Experience with Python, PyTorch, and Jupyter/Colab notebooks.
  • Ability to communicate in English and Korean fluently as this is a customer-facing role that requires interactions in English and Korean with local stakeholders.

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Preferred qualifications:
  • Experience with performance profiling tools (e.g., TensorFlow Profiler, PyTorch Profiler, TensorBoard).
  • Experience with ML performance benchmarks, distributed training, and optimizing performance versus cost trade-offs.
  • Experience training and fine-tuning models (e.g., image, language, etc.) using accelerators (e.g., GPUs, TPUs).
  • Experience working with cloud-based ML platforms.
  • Experience with libraries and frameworks (e.g., Transformers, CUDA, PyTorch).

About the job

The Google Cloud Platform team helps customers transform and build what's next for their business - all with technology built in the cloud. Our products are developed for security, reliability and scalability, running the full stack from infrastructure to applications to devices and hardware. Our teams are dedicated to helping our customers - developers, small and large businesses, educational institutions and government agencies - see the benefits of our technology come to life. As part of an entrepreneurial team in this rapidly growing business, you will play a key role in understanding the needs of our customers and help shape the future of businesses of all sizes use technology to connect with customers, employees and partners.

In this role, you will guide customers with platform architecture, migration strategy, and analyze cost and performance benchmarks to help train and serve Machine Learning models at scale. You will work with cross-functional AI teams, Product and Engineering, Infrastructure, and Kubernetes specialists to remove roadblocks and support future solutions for customers.

Google Cloud accelerates every organization's ability to digitally transform its business and industry. We deliver enterprise-grade solutions that leverage Google's cutting-edge technology, and tools that help developers build more sustainably. 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.

Responsibilities

  • Guide customers on integrating Google Cloud AI accelerators (e.g., GPUs, TPUs) into overall cloud strategy, recommending migration paths, integration strategies, and architectures that optimize performance and cost.
  • Demonstrate the power and differentiation of Google Cloud's AI accelerators through proof-of-concept projects.
  • Work with customers to optimize their machine learning models for performance, scalability, and cost-efficiency on Google Cloud infrastructure.
  • Create and deliver technical content (e.g., best practices, tutorials, code samples, presentations) to enable customers and internal teams to leverage Google Cloud AI infrastructure.
  • Travel to customer locations and represent Google Cloud at conferences, meetups, and other industry events to share knowledge, network with peers, and stay current on the latest trends.

Client-provided location(s): Seoul, South Korea
Job ID: Google-134556541465305798
Employment Type: Other

Perks and Benefits

  • Health and Wellness

    • Health Insurance
    • Dental Insurance
    • Vision Insurance
    • Life Insurance
    • Short-Term Disability
    • Long-Term Disability
    • FSA
    • HSA
    • Fitness Subsidies
    • On-Site Gym
    • Mental Health Benefits
  • Parental Benefits

    • Birth Parent or Maternity Leave
    • Non-Birth Parent or Paternity Leave
    • Fertility Benefits
    • Adoption Assistance Program
    • Family Support Resources
    • Adoption Leave
  • Work Flexibility

    • Hybrid Work Opportunities
  • Office Life and Perks

    • Commuter Benefits Program
    • Casual Dress
    • Pet-friendly Office
    • Snacks
    • Some Meals Provided
    • On-Site Cafeteria
  • Vacation and Time Off

    • Paid Vacation
    • Paid Holidays
    • Personal/Sick Days
    • Leave of Absence
    • Volunteer Time Off
  • Financial and Retirement

    • 401(K) With Company Matching
    • Company Equity
    • Performance Bonus
    • Financial Counseling
  • Professional Development

    • Tuition Reimbursement
    • Internship Program
  • Diversity and Inclusion

    • Employee Resource Groups (ERG)

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