
Stage - Analyse Du Changement Climatique
Siemens Gamesa Renewable Energy
公司概况
西门子歌美飒可再生能源
西班牙比斯开省扎穆迪奥
2017年
商业模式
可再生能源
风能发电设备的设计、制造、安装和维护
风力发电机的销售和服务
地点与地理
西门子歌美飒在多个国家运营,包括西班牙、德国、印度、美国和丹麦。
公司文化
他们的使命是推动可再生能源的使用,以应对气候变化。
公司倡导开放和包容的工作环境,鼓励创新和团队合作。
提供多种培训和发展机会,支持员工的职业成长。
活动与项目
他们正在进行多个大型风电场项目,包括在欧洲和美洲的多个新建风电场。
致力于开发更高效的风力发电技术和解决方案。
实施可持续的生产流程,减少碳足迹。
职业机会
典型职位包括工程师、项目经理和技术支持人员。
提供竞争力的薪资、健康保险和灵活的工作安排。
联系信息
最后更新于 2025-03-25 | 报告问题
Job Description
It takes the brightest minds to be a technology leader. It takes imagination to create green energy for the generations to come. At Siemens Gamesa we make real what matters, join our global team.
The global wind energy sector, both onshore and offshore, is experiencing rapid growth and is playing a key role in the energy transition. However, long-term shifts in wind resource patterns due to climate change are becoming an increasingly important concern. Siemens Gamesa Renewable Energy (SGRE), a Siemens Energy business unit and world leader in wind turbine manufacturing and maintenance, is launching a collaboration with the Dynamic Meteorology Laboratory (LMD) at École Polytechnique to address this issue.
The goal of this internship is to analyze SCADA wind data — including 10-minute average wind speed, wind direction, and turbulence intensity — collected from thousands of SGRE turbines located on all five continents over the past 20+ years. This work will assess long-term trends and interannual variability of wind characteristics and investigate their links with large-scale climate dynamics, such as ENSO (El Niño / La Niña), the North Atlantic Oscillation (NAO), and others.
This project sits at the intersection of industrial data science, fluid dynamics, and climate research, and is co-supervised by experts at SGRE and researchers at LMD.
Internship Objectives
- Process, structure, and analyze large-scale SCADA datasets focused on wind characteristics.
- Identify long-term trends in wind speed, direction, and turbulence intensity across different regions and time scales (seasonal, annual, decadal).
- Detect and characterize interannual to decadal variability, and assess links with known climate modes (ENSO, NAO, MJO, etc.).
- Compare local SCADA-derived wind data with outputs from reanalysis datasets and climate model simulations.
- Investigate the potential impacts of extreme climate events (e.g., strong El Niño years) on wind patterns in specific regions.
- Apply statistical and data science tools to reveal meaningful patterns and build robust visualizations.
- Contribute to the understanding of how wind energy resource is evolving in a changing climate.
Candidate Profile
- Final-year Master's student or engineering school student (M2 or equivalent).
- Background in fluid mechanics, climate science, data science, energy systems, or related fields.
- Strong skills in statistics, data analysis, and time series processing.
- Proficiency in Python and MATLAB (mandatory).
- Solid knowledge of atmospheric dynamics, climate variability, and climate indices (ENSO, NAO, etc.).
- Interest in wind energy, renewable resources, and climate impacts.
- Scientific curiosity, critical thinking, and ability to work independently.
- Comfortable working in an interdisciplinary and international environment.
Supervision & Work Environment
- Joint supervision by:
- SGRE engineering and data teams (based in Paris La Défense)
- Researchers from the Dynamic Meteorology Laboratory (LMD) at École Polytechnique (Palaiseau)
- Access to a unique global-scale SCADA database
- Opportunity to work across the industry-research interface
- Possibility of scientific publication or continuation into a CIFRE PhD
Working Languages
French and English (documentation and communication in both)
关于这个角色
- 巴黎, 法国
- 帕莱索, 法国
Étudiant(e) en Master 2 ou dernière année d’école d’ingénieur
UTC+01:00
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