Siemens Energy
当社は、革新的なテクノロジーと、アイデアを現実に変える力を基盤として、より持続可能な世界に移行するというお客様の取り組みを支えることにより、「社会を活性化」させています。世界中におよそ 100,000 人の従業員を擁し、今日そして明日のエネルギーシステムを形作ります。
Grid Technologies
再生可能エネルギーの市場シェアの増加、エネルギー需要の増大、老朽化を続けるインフラ設備や複雑化するエネルギー市場の中で、新しい送電網(グリッド)の接続だけでなく、既存の送電網のアップグレードと更新をサポートします。
役割について
A Snapshot of Your Day
We are seeking a highly skilled and driven Senior AI Engineer to join our team as a founding member, developing the critical data and AI infrastructure for training vision models and other foundation models for power grid applications. You will be instrumental in building and optimizing the end-to-end systems, data pipelines, and training processes that will power our AI research. Working closely with research scientists, you will translate cutting-edge research into robust, scalable, and efficient implementations, enabling the rapid development and deployment of transformational AI solutions. This role requires deep hands-on expertise in distributed training, data engineering, and some MLOps - a proven track record of building scalable AI infrastructure.
How You’ll Make an Impact
- Design, build, and optimize everything necessary for large-scale training and/or fine-tuning with different model architectures. Design and optimize the full training stack, from data ingestion and preprocessing to model training and inference pipelines, with a focus on maximizing Model Flop Utilization (MFU) across multi-node GPU clusters.
- Collaborate closely and proactively with research scientists, translating research ideas and algorithms into high-performance, production-ready code on our infrastructure. Ability to rapidly implement, iterate and test ideas from research publications or open-source codebases.
- Relentlessly profile and resolve training performance bottlenecks, optimizing every layer of the training stack from data loading to model inference for speed and efficiency.
- Contribute to technology evaluations and selection of hardware, software, and cloud services that will define our AI infrastructure platform.
- Experience with MLOps frameworks (MLFlow, WnB, etc) to implement best practices across the model lifecycle – development, training, validation, and monitoring – ensuring reproducibility, reliability, and continuous improvement.
- Create thorough documentation for infrastructure, data pipelines, and training procedures, ensuring maintainability and knowledge transfer within the growing AI lab.
- Stay at the forefront of advancements in AI for large-scale training methods and data engineering, and proactively driving improvements and innovation in our workflows and infrastructure.
- High-agency individual demonstrating initiative, problem-solving, and a commitment to delivering robust and high quality code.
What You Bring
- Bachelor's or Master's degree in Computer Science, Engineering, or a related technical field.
- 3 or more years of hands-on experience in AI Engineering/Machine Learning Engineering.
- Deep practical expertise with AI frameworks (PyTorch, Pytorch Lightning, TorchTitan, etc). Hands-on experience with large-scale multi-node GPU training, and other optimization strategies for developing computer vision models / other foundation models. Ability to scale solutions involving large datasets and complex models on distributed compute infrastructure.
- Proven history and background working with Computer Vision related tasks and projects.
- Excellent problem-solving, debugging, and performance optimization skills, with a data-driven approach to identifying and resolving technical challenges; Strong communication and teamwork skills, with a collaborative approach to working with research scientists and other engineers.
- Experience with MLOps best practices for model tracking, evaluation and deployment.
- A track record of open-source contributions to relevant projects is a BIG PLUS.
Bonus Points:
- Experience writing CUDA/Triton/CUTLASS kernels.
- Experience with performance monitoring and profiling tools for distributed training and data pipelines.
- Experience with vision foundation models or multimodal architectures.
- Publications or presentations in top-tier AI conferences (NeurIPS, CVPR, ICML, etc.) are a strong plus.
About the Team
Join Siemens Energy new AI initiative to transform power grids. At our newly established AI Lab with powerful dedicated compute cluster, we are tackling the critical challenge of global grid congestion and revolutionizing antiquated grid operation and planning. We're combining 100 years of energy domain expertise with the latest advancements in AI foundation models for energy applications to fundamentally reshape the future of substations and power grids.
The AI Lab will be pioneering innovative and transformational solutions that will be productized and deployed across a large global footprint. This is your chance to drive a paradigm shift in the energy sector and build a more resilient and sustainable energy infrastructure.
Who is Siemens Energy?
At Siemens Energy, we are more than just an energy technology company. With ~100,000 dedicated employees in more than 90 countries, we develop the energy systems of the future, ensuring that the growing energy demand of the global community is met reliably and sustainably. The technologies created in our research departments and factories drive the energy transition and provide the base for one sixth of the world's electricity generation.
Our global team is committed to making sustainable, reliable, and affordable energy a reality by pushing the boundaries of what is possible. We uphold a 150-year legacy of innovation that encourages our search for people who will support our focus on decarbonization, new technologies, and energy transformation.
Find out how you can make a difference at Siemens Energy: https://www.siemens-energy.com/employeevideo
Rewards/Benefits
- Career growth and development opportunities
- Supportive work culture
- Company paid Health and wellness benefits
- Paid Time Off and paid holidays
- 401K savings plan with company match
- Family building benefits and parental leave
https://jobs.siemens-energy.com/jobs
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