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Nvidia Solutions Architect LLM 
Taiwan, Taipei 
79035675

24.06.2024

As a Solutions Architect, you will be the first line of technical expertise between NVIDIA and our customers. Your duties will vary from working on proof-of-concept demonstrations, to driving relationships with key executives and managers to evangelize accelerated computing. Dynamically engaging with developers, scientific researchers, data scientists, IT managers and senior leaders is a meaningful part of the Solutions Architect role and will give you experience with a range of partners and concerns.

What you’ll be doing:

  • Assisting field business development in guiding the customer build/extend their GPU infrastructures for AI.

  • Help customers build their large-scale projects, especially Large Language Model (LLM) projects.

  • Engage with customers to perform in-depth analysis and optimization to ensure the best performance on GPU architecture systems. This includes support in optimization of both training and inference pipelines.

  • Partner with Engineering, Product and Sales teams to develop, plan best suitable solutions for customers. Enable development and growth of product features through customer feedback and proof-of-concept evaluations.

  • Build industry expertise and become a contributor in integrating NVIDIA technology into Enterprise Computing architectures.

What we need to see:

  • MS or PhD in Electrical Engineering, Computer Science/Engineering, Mathematics, Physics, or a related field (or equivalent experience).

  • 3+ years of work-related experience in AI for natural language processing (NLP) and large language model (LLM).

  • Knowledge of application areas such as natural language processing and computer vision.

  • Excellent programming skills in some rapid prototyping environments such as Python, C++ and parallel programming (e.g., CUDA) is a plus.

  • Expertise with deep learning frameworks such as PyTorch.

  • Strong written and oral communications skills in English.

Ways to stand out from the crowd:

  • Background in large language model.

  • Demonstrated experience optimization workloads with GPU technology.

  • Experience with NVIDIA AI and Data Science software and platform.