Sr. Principal Software Scientist

Posted 3 Days Ago
Be an Early Applicant
Hiring Remotely in USA
Remote
185K-280K Annually
Senior level
Automotive • Other
The Role
Lead design and training of large-scale transformer and hybrid foundation models across text and multimodal domains. Own architecture choices, diagnose large-scale training instabilities, optimize scaling tradeoffs (data, compute, model), design loss and alignment strategies, and execute distributed training (FSDP/ZeRO, tensor/pipeline parallelism) with mixed precision to build in-house foundation model expertise.
Summary Generated by Built In
A Moving Experience.

Who is Cerence AI? 

Cerence AI is the global leader in AI for transportation, specialized in building AI and voice-powered companions for cars, two-wheelers, and more that enable people to focus on what matters most. With over 500 million cars shipped with Cerence AI's technology, we partner with leading automakers (such as Volkswagen, Mercedes, Audi, Toyota and many more), mobility providers, and technology companies to power intuitive, integrated experiences that create safer, more connected, and more enjoyable journeys for drivers and passengers alike. 

 

Our Driving Force  

Our team is dedicated to pushing the boundaries of AI innovation, working around the globe with headquarters in Burlington, Massachusetts, USA and 16 other offices across Europe, Asia, and North America. We bring together diverse backgrounds, and varied skill sets with the shared goal of advancing the next generation of transportation user experiences. Our culture is customer-centric, collaborative, fast-paced, and fun, with continuous opportunities for learning and development to support your career growth. 

 

Interested in having a significant impact in a dynamic industry with a high-performing global team? We’re looking for an exceptional Senior Principal AI Scientist in Generative AI who is ready to drive the future of mobility with us! 

 

What You Will Work On 

  • Design and train largescale transformer and hybrid foundation models 

  • Own model architecture choices across text, multimodal, and emerging paradigms 

  • Diagnose and resolve training instabilities at scale 

  • Navigate scaling tradeoffs across data, compute, and architecture 

  • Define the technical direction for nextgeneration models 

 

Core Responsibilities 

Deep Learning & Transformer Foundations 

  • Apply strong fundamentals in deep learning and representation learning 

  • Design and modify transformer architectures, including: 

  • Attention variants 

  • RoPE, ALiBi 

  • Grouped Query Attention (GQA) 

  • MixtureofExperts (MoE) 

  • Build models from first principles, not just adapt preexisting codebases 

Optimisation Dynamics & Training Stability 

  • Own optimizer and scheduler choices, including: 

  • AdamW 

  • Lion 

  • Adafactor 

  • Learningrate and warmup schedulers 

  • Understand and debug: 

  • Optimizer instability 

  • Gradient pathologies 

  • Divergence at large scale 

 

Scaling Laws & Compute Tradeoffs 

  • Apply and validate scaling laws 

  • Navigate Chinchillastyle compute vs data tradeoffs 

  • Make informed decisions about model size, dataset size, and training duration 

 

Loss Functions & Alignment 

  • Design and experiment with loss functions including: 

  • Nexttoken prediction 

  • Contrastive objectives 

  • RLHF, DPO, GRPO 

  • Understand how loss design impacts convergence, generalization, and alignment 

 

Distributed Foundation Model Training 

  • Design and execute largescale training using: 

  • FSDP 

  • ZeRO3 

  • Tensor parallelism 

  • Pipeline parallelism 

  • Apply 

  • Mixed precision (bf16, fp8) 

  • Gradient checkpointing 

  • Partner closely with ML systems teams while retaining architectural ownership 

 

Architecture Innovation 

  • Explore and implement novel model designs, including: 

  • MoE routing strategies 

  • Multimodal fusion architectures 

  • SSM / hybrid architectures 

  • Design architectures with KV cache efficiency and inference implications in mind 

 

What Success Looks Like 

  • Training remains stable as models scale in size and complexity 

  • Architectural decisions are principled and defensible 

  • Models converge faster and generalize better due to architecture and optimisation choices 

  • Failure modes are understood, not mysterious 

  • The organization develops true inhouse foundation model expertise 

 

Required Experience & Skills 

Strongly Required 

  • Deep theoretical and practical understanding of modern deep learning 

  • Handson experience training large models from scratch 

  • Ability to reason about optimization, not just tune hyperparameters 

  • Comfort operating in ambiguous, researchdriven environments 

Critical Technical Skills 

  • Transformer internals and attention mechanisms 

  • Optimisation algorithms and training dynamics 

  • Scaling laws and compute/data tradeoffs 

  • Distributed training strategies and mixed precision 

  • Architecture innovation for large, realworld models 

 

Common Problems You’ll Be Solving  

  • Why training diverges at scale 

  • How optimizer dynamics interact with architecture 

  • When scaling laws break down 

  • The real tradeoffs between data, compute, and model design 

 

What we offer 

We offer a generous compensation and benefits package (in addition to the base salary), including: 

  • Salary range $185,000.00 - $280,000.00 It is not typical for offers to be made at or near the top of the range. The actual salary will be determined based on experience and other job-related factors. 

  • Annual bonus opportunity 

  • Insurance coverage (medical, dental, vision, life, and disability) 

  • Paid time off 

  • Paid holidays 

  • Company contribution to the RRSP (Registered Retirement Savings Plan) 

  • Equity awards for certain positions and levels 

  • Remote and/or hybrid work available depending on the position 

All compensation and benefits are subject to the terms and conditions of the underlying plans or programs, as applicable, and may be amended, terminated, or replaced from time to time. 

Cerence Inc. (Nasdaq: CRNC and www.cerence.com) is the global industry leader in creating unique, moving experiences for the automotive world. Spun out from Nuance in October 2019, Cerence is a new, independent company that has quickly gained traction as a leader in the automotive voice assistant space, working with all of the world’s leading automakers – from Ford and Fiat Chrysler to Daimler, Audi and BMW to Geely and SAIC – to transform how a car feels, responds and learns. Its track record is built on more than 20 years of industry experience and leadership and more than 500 million cars on the road today across more than 70 languages.  

 

As Cerence looks to the future and continues an ambitious growth agenda, we need someone to join the team and help build the future of voice and AI in cars. This is an exciting opportunity to join Cerence’s passionate, dedicated, global team and be a part of meaningful innovation in a rapidly growing industry. 

EQUAL OPPORTUNITY EMPLOYER

Cerence is firmly committed to Equal Employment Opportunity (EEO) and to compliance with all federal, state and local laws that prohibit employment discrimination on the basis of age, race, color, gender, gender identity, gender expression, sex, sex stereotyping, pregnancy, national origin, ancestry, religion, physical or mental disability, medical condition, marital status, citizenship status, sexual orientation, protected military or veteran status, genetic information and other protected classifications. Cerence Equal Employment Opportunity Policy Statement.

All prospective and current Employees need to remain vigilant when it comes to executing security policies in the workplace. This includes:

- Following workplace security protocols and training programs to familiarize with the ways to maintain a safe workplace.
- Following security procedures to report any suspicious activity.
- Having respect for corporate security procedures to allow those procedures to be effective.
- Adhering to company's compliance and regulations.
- Encouraging to follow a zero tolerance for workplace violence.

- Basic knowledge of information security and data privacy requirements (e.g., how to protect data & how to be handling this data).

- Demonstrative knowledge of information security through internal training programs.

Skills Required

  • Deep theoretical and practical understanding of modern deep learning
  • Hands-on experience training large models from scratch
  • Ability to reason about optimization and training dynamics (not only hyperparameter tuning)
  • Experience with transformer internals and attention mechanisms
  • Experience designing or modifying architectures (RoPE, ALiBi, GQA, MoE, SSM/hybrid)
  • Experience with optimizers and schedulers such as AdamW, Lion, Adafactor and diagnosing optimizer instability
  • Knowledge of scaling laws (e.g., Chinchilla-style) and compute vs data tradeoffs
  • Experience with distributed foundation model training (FSDP, ZeRO-3, tensor and pipeline parallelism) and mixed precision (bf16, fp8)
  • Experience designing loss functions and alignment approaches (next-token prediction, contrastive, RLHF, DPO, GRPO)
  • Comfort operating in ambiguous, research-driven environments and building models from first principles

Cerence Inc. Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Cerence Inc. and has not been reviewed or approved by Cerence Inc..

  • Healthcare Strength Healthcare is described as strong and affordable, with mentions of a great health care plan and wellness support. Feedback suggests these offerings contribute to work-life balance and peace of mind.
  • Wellbeing & Lifestyle Benefits Lifestyle perks such as gym membership reimbursement and transit subsidies are highlighted as meaningful add-ons. Feedback suggests these perks enhance the overall rewards package.
  • Strong & Reliable Incentives Bonuses and equity incentives, including spot awards, short-term incentive targets, and ESPP, are cited as part of total rewards. Feedback suggests these programs are a notable component beyond base pay.

Cerence Inc. Insights

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The Company
HQ: Burlington, MA
1,288 Employees
Year Founded: 2019

What We Do

Cerence (NASDAQ: CRNC) is the global industry leader in creating unique, moving experiences for the mobility world. As an innovation partner to the world’s leading automakers and mobility OEMs, it is helping advance the future of connected mobility through intuitive, powerful interaction between humans and their cars, two-wheelers, and even elevators, connecting consumers’ digital lives to their daily journeys no matter where they are. Cerence’s track record is built on more than 20 years of knowledge and more than 400 million cars shipped with Cerence technology. Whether it’s connected cars, autonomous driving, e-vehicles, or buildings, Cerence is mapping the road ahead.

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