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Full-Time

Software Engineer – Senior

AI/ML Workloads

Confirmed live in the last 24 hours

d-Matrix

d-Matrix

51-200 employees

AI compute platform using in-memory computing

Data & Analytics
Hardware
AI & Machine Learning

Junior, Mid

Santa Clara, CA, USA

Category
FinTech Engineering
Software Engineering
Required Skills
Python
Tensorflow
Data Structures & Algorithms
Natural Language Processing (NLP)
Linux/Unix
Requirements
  • MS or PhD preferred in Computer Science, Electrical Engineering, Math, Physics or related degree with 2+ Years of Industry Experience.
  • Strong grasp of computer architecture, data structures, system software, and machine learning fundamentals
  • Experience with mapping NLP models (BERT and GPT) to accelerators and awareness of trade-offs across memory, BW and compute
  • Proficient in Python/C/C++ development in Linux environment and using standard development tools
  • Experience with deep learning frameworks (such as PyTorch, Tensorflow)
  • Self-motivated team player with a strong sense of ownership and leadership
Responsibilities
  • The role requires you to be part of the team that helps productize the SW stack for our AI compute engine.
  • As part of the Software team, you will be responsible for the development, enhancement, and maintenance of the development and testing infrastructure for next-generation AI hardware.
  • You can build and scale software deliverables in a tight development window.
  • You will work with a team of compiler, ML, and HW architecture experts to build performant ML workloads targeted for d-Matrix’s architecture.
  • You will also research and develop forward looking items that further improve the performance of ML workloads on d-Matrix’s architecture.

d-Matrix is developing a unique AI compute platform using in-memory computing (IMC) techniques with chiplet level scale-out interconnects, revolutionizing datacenter AI inferencing. Their innovative circuit techniques, ML tools, software, and algorithms have successfully addressed the memory-compute integration problem, enhancing AI compute efficiency.

Company Stage

Series B

Total Funding

$161.5M

Headquarters

Santa Clara, California

Founded

2019

Growth & Insights
Headcount

6 month growth

-15%

1 year growth

85%

2 year growth

223%
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Simplify's Take

What believers are saying

  • Securing $110 million in Series B funding positions d-Matrix for rapid growth and technological advancements.
  • Their Jayhawk II silicon aims to solve critical issues in AI inference, such as cost, latency, and throughput, making generative AI more commercially viable.
  • The company's focus on efficient AI inference could attract significant interest from data centers and enterprises looking to deploy large language models.

What critics are saying

  • Competing against industry giants like Nvidia poses a significant challenge in terms of market penetration and customer acquisition.
  • The high dependency on continuous innovation and technological advancements could strain resources and lead to potential setbacks.

What makes d-Matrix unique

  • d-Matrix focuses on developing AI hardware specifically optimized for Transformer models, unlike general-purpose AI chip providers like Nvidia.
  • Their digital in-memory compute (DIMC) architecture with chiplet interconnect is a first-of-its-kind innovation, setting them apart in the AI hardware market.
  • Backed by major investors like Microsoft, d-Matrix has the financial support to challenge established players like Nvidia.