International Scientist – Spatial Data Science at CIFOR-ICRAF

9 days ago

Kenya

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Job Description

CIFOR-ICRAF is seeking an International Scientist in Spatial Data Science based in Nairobi, Kenya. The role requires expertise in machine learning, GIS, and spatial data analysis, including remote sensing. Responsibilities include developing machine learning models, conducting data analysis with R, Python, and Julia, and supervising junior staff. Candidates should have an MSc or PhD in a relevant field and strong programming skills.
Overview

We are looking for a Spatial Data Scientist with strong machine learning analytics experience. The position falls under the Spatial Data Science and Applied Learning Lab (SPACIAL) of CIFOR-ICRAF. If you have a background in GIS, spatial data analysis, including remote sensing (satellite data analysis, drone data processing), this position might be for you. You will need a strong background in working on the development and deployment of machine learning models based on remote sensing data (e.g. satellite data). Spatial data science tasks will include data analysis using R Statistics, Python, Julia, and QGIS. A background in the maintenance and use of SpatioTemporal Asset Catalogs (STACs) would be a bonus. Tasks will include identification of data analytics problems, cleaning, and validation of data to ensure accuracy, completeness, and uniformity, and machine learning tasks. The position will support multiple themes and units within CIFOR-ICRAF on scientific project tasks, particularly around access to and use of spatial data, database development and management, report writing, and scientific publications. The position will also supervise junior data scientists, interns, and students.

Duties and responsibilities
• Develop and deploy machine learning models using ground truth and remote sensing data to assess various aspects of ecosystem health at scale based on global datasets. This will include working with both optical and radar data and advanced machine learning frameworks, including deep learning models.
• Conduct spatial data (GIS) analysis tasks using R, Python, Julia, and QGIS.
• Contribute to the maintenance of the SPACIAL STAC.
• Contribute to the development of monitoring systems and platforms.
• Develop and deploy machine learning models using ground truth and remote sensing data. This will include working with both optical and radar data.
• Engage with stakeholders and contribute to the development of trainings for CIFOR-ICRAF staff and outside partners in spatial data analysis using languages such as R, Python and Julia.
• Represent CIFOR-ICRAF at conferences and/or meetings from a technical remote sensing / data science perspective.
• Manage spatial data science fellows and interns.

Requirements
• MSc or PhD in spatial data science, remote sensing, GIS or related field.
• Strong background in machine learning and AI.
• High level of proficiency in computer programming languages such as R, Python, or Julia.
• Experience in handling spatial data.
• Experience with Natural Language Processing (NLP).
• Experience with interactive decision support systems (eg. dashboards).

Education, knowledge and experience

•MSc or PhD in spatial data science, remote sensing, GIS or related field.

•Strong background in machine learning and AI.

•High level of proficiency in computer programming languages such as R, Python, or Julia.

•Experience in handling spatial data.

•Experience with Natural Language Processing (NLP).

•Experience with interactive decision support systems (eg. dashboards).

Terms and conditions

•This is a Globally Recruited position. CIFOR-ICRAF offers competitive remuneration in local currency commensurate with skills and experience.

•The duty station will be in Nairobi, Kenya CIFOR-ICRAF Offices.

Application process

The application deadline is 18 Mar 2024

We will acknowledge all applications, but will contact only short-listed candidates.

Interested applicants can apply via this link.

Center For International Forestry Research (Cifor) And World Agroforestry (Icraf)


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