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Staff Software Engineer, ML Training and Inference Infrastructure

Rivian

Greater London

On-site

GBP 80,000 - 100,000

Full time

Yesterday
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Job summary

A leading electric vehicle manufacturer in Greater London seeks a Staff Software Engineer specializing in machine learning infrastructure. The ideal candidate will optimize deep learning performance on NVIDIA GPU systems and manage large-scale model training. Applicants should possess a PhD in Computer Science or equivalent experience, and have substantial knowledge in PyTorch and deep learning frameworks. This role contributes directly to safety-critical self-driving technologies for innovative vehicles.

Qualifications

  • Deep knowledge of machine learning infrastructure for autonomous driving.
  • Experience optimizing deep learning performance on NVIDIA GPU systems.
  • Proven track record of improving model training and inference speeds.

Responsibilities

  • Optimize performance of Deep Learning training workload on large-scale systems.
  • Optimize latency of model inference on onboard systems.
  • Design, train, and deploy large deep learning models.

Skills

Deep knowledge of PyTorch
Knowledge of model training frameworks
In-depth knowledge of transformer architecture
Experience with large scale distributed training of models
Performance optimization for model training

Education

PhD in CS/CE/EE or equivalent industry experience
Job description
About Rivian

Rivian is on a mission to keep the world adventurous forever. This goes for the emissions-free Electric Adventure Vehicles we build, and the curious, courageous souls we seek to attract.

As a company, we constantly challenge what’s possible, never simply accepting what has always been done. We reframe old problems, seek new solutions and operate comfortably in areas that are unknown. Our backgrounds are diverse, but our team shares a love of the outdoors and a desire to protect it for future generations.

Role Summary

As a Staff Software Engineer, ML training and inference infrastructure, you will be a member of the Perception team at Rivian, which develops advanced machine learning algorithms that directly impact safety critical self-driving features of our category defining vehicles.

We are looking for candidates with deep knowledge and strong enthusiasm towards establishing a state-of-art ML infrastructure for training and inference of large autonomous driving models; and optimizing the training and inference performance.

Responsibilities
  • Optimize the performance of Deep Learning training workload on NVIDIA GPU systems on a large scale
  • Optimize the latency of model inference and model pre- and post-processing on onboard systems
  • Design, train, and deploy large deep learning models that can leverage the vast amount of labeled and unlabeled data
Qualifications
  • PhD in CS/CE/EE, or equivalent, in industry experience
  • Deep knowledge of PyTorch
  • Knowledge of model training framework (e.g. PyTorch Lightning, ray, etc.)
  • In-depth knowledge of transformer architecture and ways to accelerate the training and inference of transformer models
  • Experience of performing large scale distributed training of models
  • A track record of profiling models and doing detective work to improve model training and inference speed
Equal Opportunity

Rivian is an equal opportunity employer and complies with all applicable federal, state, and local fair employment practices laws. All qualified applicants will receive consideration for employment without regard to race, color, religion, national origin, ancestry, sex, sexual orientation, gender, gender expression, gender identity, genetic information or characteristics, physical or mental disability, marital/domestic partner status, age, military/veteran status, medical condition or any other characteristic protected by law.

Rivian is committed to ensuring that our hiring process is accessible for persons with disabilities. If you have a disability or limitation, such as those covered by the Americans with Disabilities Act, that requires accommodations to assist you in the search and application process, please email us atcandidateaccommodations@rivian.com.

Candidate Data Privacy

Rivian may collect, use and disclose your personal information or personal data (within the meaning of the applicable data protection laws) when you apply for employment and/or participate in our recruitment processes (“Candidate Personal Data”). This data includes contact, demographic, communications, educational, professional, employment, social media/website, network/device, recruiting system usage/interaction, security and preference information. Rivian may use your Candidate Personal Data for the purposes of (i) tracking interactions with our recruiting system; (ii) carrying out, analyzing and improving our application and recruitment process, including assessing you and your application and conducting employment, background and reference checks; (iii) establishing an employment relationship or entering into an employment contract with you; (iv) complying with our legal, regulatory and corporate governance obligations; (v) recordkeeping; (vi) ensuring network and information security and preventing fraud; and (vii) as otherwise required or permitted by applicable law.

Rivian may share your Candidate Personal Data with (i) internal personnel who have a need to know such information in order to perform their duties, including individuals on our People Team, Finance, Legal, and the team(s) for which you are applying; (ii) Rivian affiliates; and (iii) Rivian’s service providers, including providers of background checks, staffing services, and cloud services.

Rivian may transfer or store internationally your Candidate Personal Data, including to or in the United States, Canada, the United Kingdom, and the European Union and in the cloud, and this data may be subject to the laws and accessible to the courts, law enforcement and national security authorities of such jurisdictions.

Please note that we are currently not accepting applications from third party application services.

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