Software Engineering (NCG)

Posted 11 Days Ago
Mountain View, CA
Hybrid
Entry level
Artificial Intelligence • Cloud • Machine Learning • Software • Database
The Role
Join the Kumo team to develop a machine learning platform for data lakehouses. Responsibilities include designing core systems for model training, collaborating with leaders and researchers, and building scalable, high-performance software. A strong foundation in software development and a passion for machine learning is required.
Summary Generated by Built In

Come and change the world of AI with the Kumo team!


Companies spend millions of dollars to store terabytes of data in data lakehouses, but only leverage a fraction of it for predictive tasks. This is because traditional machine learning is slow and time consuming, taking months to perform feature engineering, build training pipelines, and achieve acceptable performance.


At Kumo, we are building a machine learning platform for data lakehouses, enabling data scientists to train powerful Graph Neural Net models directly on their relational data, with only a few lines of declarative syntax known as Predictive Query Language. The Kumo platform enables users to build models a dozen times faster, and achieve better model accuracy than traditional approaches.


We’re looking for motivated and talented new grads to join us in the following areas:


Data Engineering

Infrastructure Engineering

Distributed Systems Engineering


You'll have the opportunity to work alongside world-class engineers, researchers, and leaders from top institutions like Stanford.

The Value You'll Add:

  • Design & Build: Help design the core systems for model training, inference, and scaling, working on everything from system architecture to APIs.
  • Innovate: Contribute to the development of cutting-edge machine learning techniques tailored to work seamlessly with large-scale data warehouse systems.
  • Collaborate: Work closely with engineering leaders and research scientists to bring new ideas to life and tackle real-world challenges.
  • Deliver: Build and deploy production-quality systems that scale, ensuring the system is fast, reliable, and secure.

Your Foundation:

  • Degree: Recent graduate with a BS in Computer Science, Engineering, or a related field. If you have an MS or Ph.D., that’s a bonus!
  • Skills: Strong foundation in software development, systems design, and algorithms. Proficiency in programming languages like Python, Java, or C++.
  • Passion: A deep interest in machine learning and cloud technologies. You’re excited about building scalable, high-performance systems.
  • Curiosity: An eagerness to learn and grow in an innovative, fast-paced environment.

Your Extra Special Sauce:

  • Experience with cloud platforms like AWS, Azure, or GCP.
  • Knowledge of distributed systems and databases.
  • Exposure to machine learning frameworks like PyTorch or TensorFlow.
  • Hands-on experience building APIs or microservices.
  • Contributions to open-source projects, research papers, or university-based ML work.

We are an equal opportunity employer and value diversity at our company. We do not discriminate on the basis of race, religion, color, national origin, gender, sexual orientation, age, marital status, veteran status, or disability status.

Top Skills

C++
Java
Python
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The Company
HQ: Mountain View, CA
38 Employees
On-site Workplace
Year Founded: 2021

What We Do

Democratizing AI on the Modern Data Stack!

The team behind PyG (PyG.org) is working on a turn-key solution for AI over large scale data warehouses. We believe the future of ML is a seamless integration between modern cloud data warehouses and AI algorithms. Our ML infrastructure massively simplifies the training and deployment of ML models on complex data.

With over 40,000 monthly downloads and nearly 13,000 Github stars, PyG is the ultimate platform for training and development of Graph Neural Network (GNN) architectures. GNNs -- one of the hottest areas of machine learning now -- are a class of deep learning models that generalize Transformer and CNN architectures and enable us to apply the power of deep learning to complex data. GNNs are unique in a sense that they can be applied to data of different shapes and modalities.

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