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Energy Optimization Engineering Intern
Исключительная возможность для студентов продвинутых курсов поработать в одной из самых инновационных компаний в сфере энергетики под руководством экспертов. Высокая почасовая оплата для стажировки и работа с передовыми технологиями (AI, BESS, Microgrids).
Сложность вакансии
Высокая сложность обусловлена требованиями к уровню образования (магистратура или PhD) и глубоким знаниям в области математической оптимизации (MIP) и машинного обучения для временных рядов.
Анализ зарплаты
Предлагаемая ставка $41–$54 в час является очень конкурентоспособной для инженерной стажировки в Сан-Франциско, особенно для уровня MS/PhD. Она находится в верхнем сегменте рыночных ожиданий для интернов в сфере Energy/Tech.
Сопроводительное письмо
I am writing to express my strong interest in the Energy Optimization Engineering Intern position at Redwood Materials for Summer 2026. As a graduate student focused on energy systems and mathematical optimization, I am deeply impressed by Redwood's mission to localize the battery supply chain and your innovative approach to managing energy for AI Data Centers and microgrids.
My background in Mixed-Integer Programming (MIP) and time-series forecasting aligns perfectly with the responsibilities of this role. I have extensive experience developing mathematical models for BESS and implementing predictive algorithms for market prices and load profiles. I am particularly excited about the opportunity to collaborate with your cloud software teams to deploy these optimization engines into scalable architectures, contributing to the development of a truly intelligent energy management layer.
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Описание вакансии
About Redwood Materials
Redwood is localizing a global battery supply chain that seamlessly integrates recovery, reuse, and recycling—keeping critical minerals in circulation and driving the energy transition. Founded in 2017,we’re delivering low-cost and large-scale energy storage and producing battery materials in the U.S. for the first time, all from batteries we already have.
Energy Optimization Engineering Intern:
The Energy Optimization Engineering Intern will support the development of the predictive "intelligence layer" used to manage energy for AI Data Centers and microgrids. Working under the guidance of senior engineers, you will help build and validate time-series forecasting models for GPU power loads and market prices, integrating these inputs into Mixed-Integer Programming (MIP) prototypes. You will collaborate with cloud software teams to test these "forecast-informed" algorithms in a cloud-native environment, assisting in the simulation and back testing of energy management strategies. Your objective is to help improve the accuracy and efficiency of our EMS, gaining hands-on experience in "value-stacking" and real-world energy optimization. This is a Summer 2026 position.
Responsibilities will include:
AI-Driven Predictive Decision Making and Optimization
- Apply time-series forecasting and machine learning algorithms to predict PV generation, microgrid load profiles, and electricity market prices
- Integrate multi-horizon forecasts into intelligent Energy Management Systems (EMS) to drive autonomous decision-making
Mathematical Modeling & Microgrid Simulation
- Develop high-fidelity mathematical models of Battery Energy Storage Systems (BESS) and Microgrid components
- Utilize Mixed-Integer Programming (MIP) and other mathematical optimization techniques to solve complex resource allocation and scheduling problems
- Conduct large-scale EMS simulations and scenario testing to validate strategy performance and stability under varying grid conditions
Cloud Integration & Software Collaboration
- Work closely with Cloud Software Engineers to deploy optimization engines and predictive models into scalable cloud architectures
- Design and maintain high-performance Application Programming Interfaces (APIs) for real-time control signals and data exchange between the cloud and site-level assets
Desired Qualifications:
- MS or PhD in Energy Engineering, Electrical Engineering, Operations Research, Applied Mathematics or a related field
- Strong background in optimization (mixed integer, stochastic, robust, convex) with applications to SCUC/SCED or other electricity market problems
- Strong background in time series data forecasting applied to energy systems
- Excellent first-principles physics understanding of electrical and mechanical systems, power delivery, energy storage and transformation, and basic thermal mechanics
- Strong communication and collaboration skills
- Familiarity with AI techniques in energy markets
Physical Requirements:
- Ability to perform essential job functions in compliance with ADA, FMLA, and other relevant federal, state, and local regulations, including meeting both qualitative and quantitative productivity standards
Working Conditions:
- Environment, such as office or outdoors
- Ability to work in challenging working conditions which may include exposure to noise, dust, chemicals, and temperature extremes, while protected by personal protective equipment (PPE), for extended periods of time
- Essential physical requirements, such as climbing, standing, stooping, or typing
In accordance with California pay transparency laws, the salary range for this position is listed below. Actual compensation may vary based on a variety of factors, including experience, education, and skills.
California Pay Range:
$41—$54.50 USD
The position is full-time. Compensation will be commensurate with experience.
We collect personal information (PI) from you in connection with your application for employment with Redwood Materials, including the following categories of PI: identifiers, personal records, professional or employment information, and inferences drawn from your PI. We collect your PI for our purposes, including performing services and operations related to your potential employment. If you have additional privacy-related questions, please contact us at privacy@redwoodmaterials.com.
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Навыки
- Python
- Mixed-Integer Programming
- Machine Learning
- Time Series Analysis
- Mathematical Modeling
- Energy Management Systems
- BESS
- Optimization
- API Design
- Cloud Integration
Возможные вопросы на собеседовании
Вакансия требует работы с Mixed-Integer Programming для управления микросетями.
Можете ли вы описать ваш опыт использования смешанно-целочисленного программирования (MIP) для решения задач распределения ресурсов в энергетике?
Прогнозирование нагрузок GPU и цен на рынке является ключевой задачей.
Какие методы машинного обучения вы считаете наиболее эффективными для прогнозирования временных рядов с высокой волатильностью, таких как нагрузка дата-центров?
Роль предполагает интеграцию моделей в облачную инфраструктуру.
Был ли у вас опыт работы с облачными инженерами для развертывания алгоритмов оптимизации через API?
Необходимо понимание физики систем хранения энергии.
Как вы учитываете физические ограничения и деградацию аккумуляторных систем (BESS) в своих математических моделях?
Работа включает симуляции EMS.
Как вы подходите к валидации стратегий управления энергопотреблением в условиях неопределенности рыночных цен и генерации?
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- Страна
- США
- Зарплата
- 41 $ – 54 $