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GIS for Hydrology and Water Resources Training Course

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How to Register Click View Schedule for your preferred location, select your training dates, then register as an individual, group, or online participant. You will receive an invitation letter and invoice promptly after submission.
Training Locations Kenya (Nairobi, Mombasa, Malindi, Kisumu, Nakuru, Nanyuki) · Tanzania (Dodoma, Zanzibar, Dar es Salaam) · Dubai UAE · South Africa (Pretoria, Cape Town) · Istanbul · Accra · Banjul more ▾
Groups & Payment Groups of 5+ receive one complimentary place — see group rates. Payment due at least 1 month before (Europe & Asia) or 2 weeks before (Africa programs).
Virtual / Online
Live, instructor-led — join from anywhere
549 dates
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Aug 17, 2026 Aug 28, 2026 10 days Virtual Onsite
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Classroom / In-Person
Same course & certificate — face-to-face
14 locations
Nairobi, Kenya Aug 17, 2026 (99)
Mombasa, Kenya Aug 17, 2026 (49)
Kigali, Rwanda Aug 17, 2026 (50)
Istanbul, Turkey Aug 17, 2026 (15)
Zanzibar, Tanzania Aug 24, 2026 (16)
Addis Ababa, Ethiopia Aug 24, 2026 (30)
Cape Town, South Africa Aug 24, 2026 (50)

Format: Live instructor-led online training via Zoom / Microsoft Teams

GIS for Hydrology and Water Resources Training Course

GIS for Hydrology and Water Resources is a comprehensive training program designed to equip participants with advanced knowledge and practical skills in the application of Geographic Information Systems (GIS), Remote Sensing, hydrological modeling, spatial analysis, and geospatial technologies for effective water resources assessment, planning, monitoring, and management. Water resources are critical for agriculture, industry, urban development, environmental sustainability, energy production, and public health. With increasing pressures from climate change, population growth, land-use changes, and water scarcity, organizations require advanced geospatial tools to support sustainable water resource management and informed decision-making. This course provides participants with practical expertise in watershed analysis, hydrological modeling, groundwater assessment, flood management, drought monitoring, and integrated water resource planning.

The course introduces participants to modern GIS and hydrological analysis methodologies using satellite imagery, Digital Elevation Models (DEMs), GPS technologies, climate datasets, hydrological databases, and advanced spatial analysis tools. Participants will learn how to collect, process, integrate, analyze, and visualize hydrological and environmental data to support watershed management, river basin planning, groundwater exploration, flood risk assessment, water quality monitoring, and infrastructure development. Through practical exercises and real-world case studies, participants will gain hands-on experience in hydrological mapping, terrain analysis, runoff modeling, drainage network extraction, and water resource decision-support systems.

Organizations involved in water management, irrigation development, environmental conservation, disaster risk reduction, infrastructure planning, agriculture, hydropower development, and climate adaptation increasingly rely on GIS technologies to improve efficiency, sustainability, and resilience. This course develops participants’ competencies in hydrological GIS applications, geospatial intelligence, water resource analytics, spatial modeling, environmental monitoring, and decision-support systems. Participants will explore how emerging technologies such as Artificial Intelligence (AI), cloud GIS, Internet of Things (IoT), drone mapping, machine learning, and real-time monitoring systems are transforming hydrological assessments and water resource management.

By combining theoretical foundations with practical applications, this training empowers participants to design and implement GIS-based hydrological and water resource management systems that support sustainable development, environmental protection, climate resilience, and water security. Participants will acquire the skills required to develop hydrological databases, conduct watershed analyses, generate thematic maps, create water resource dashboards, and support integrated water management initiatives. Upon successful completion, participants will be able to apply advanced GIS and hydrological techniques to improve water planning, resource allocation, monitoring, and policy development.

Course Objectives

1.     Understand the principles and applications of GIS in hydrology and water resources management.

2.     Apply GIS and Remote Sensing techniques in hydrological analysis.

3.     Develop hydrological geodatabases and spatial information systems.

4.     Conduct watershed and river basin analysis.

5.     Perform hydrological modeling and runoff assessment.

6.     Analyze groundwater resources and recharge potential zones.

7.     Assess flood risks and drought vulnerability using GIS.

8.     Monitor water quality and environmental conditions.

9.     Generate hydrological maps, reports, and decision-support products.

10.  Design and implement GIS-based water resources management projects.

Organization Benefits

1.     Improved water resource planning and management.

2.     Enhanced watershed and river basin monitoring.

3.     Better flood and drought risk assessment capabilities.

4.     Improved groundwater exploration and management.

5.     Enhanced environmental conservation and sustainability.

6.     Better decision-making through geospatial intelligence.

7.     Increased efficiency in water infrastructure planning.

8.     Improved climate resilience and disaster preparedness.

9.     Enhanced monitoring and evaluation of water projects.

10.  Strengthened institutional capacity in hydrological GIS applications.

Target Participants

·       Hydrologists

·       Water Resource Managers

·       GIS Specialists

·       Environmental Scientists

·       Irrigation Engineers

·       Civil Engineers

·       Watershed Management Professionals

·       Climate Change Specialists

·       Disaster Risk Management Officers

·       Natural Resource Managers

·       Researchers and Academics

·       Monitoring and Evaluation Specialists

·       Government Water Officers

·       Infrastructure Planning Professionals

·       Development Practitioners

·       Project Managers

Course Outline

Module 1: Introduction to GIS for Hydrology and Water Resources

·       Fundamentals of Hydrology

·       GIS Concepts and Applications

·       Hydrological Data Sources

·       Water Resource Management Frameworks

·       Spatial Analysis Principles

·       Case Study: Integrated River Basin Management Project

Module 2: Spatial Data Collection and Management

·       GPS Data Collection Techniques

·       Remote Sensing for Water Resources

·       Hydrological Data Acquisition

·       Spatial Database Development

·       Data Quality Assurance and Validation

·       Case Study: Hydrological Database Development Program

Module 3: Digital Elevation Models and Terrain Analysis

·       DEM Fundamentals

·       Watershed Delineation Techniques

·       Drainage Network Extraction

·       Slope and Terrain Analysis

·       Catchment Characterization

·       Case Study: Watershed Mapping Project

Module 4: Watershed and River Basin Analysis

·       Watershed Management Concepts

·       River Basin Assessment Techniques

·       Surface Water Mapping

·       Water Flow Analysis

·       Land Use Impacts on Hydrology

·       Case Study: River Basin Planning Initiative

Module 5: Hydrological Modeling and Runoff Analysis

·       Hydrological Modeling Concepts

·       Rainfall-Runoff Modeling

·       Surface Water Flow Simulation

·       Water Balance Analysis

·       Model Calibration and Validation

·       Case Study: Catchment Hydrological Modeling Project

Module 6: Groundwater Mapping and Assessment

·       Groundwater Resource Evaluation

·       Aquifer Mapping Techniques

·       Groundwater Recharge Assessment

·       Borehole Data Integration

·       Groundwater Vulnerability Analysis

·       Case Study: Groundwater Exploration Program

Module 7: Flood Risk Mapping and Management

·       Flood Hazard Assessment

·       Floodplain Delineation

·       Flood Susceptibility Mapping

·       Flood Modeling Techniques

·       Emergency Preparedness Planning

·       Case Study: Urban Flood Risk Management Project

Module 8: Drought Monitoring and Water Scarcity Analysis

·       Drought Assessment Methods

·       Climate Data Integration

·       Drought Vulnerability Mapping

·       Water Availability Analysis

·       Early Warning Systems

·       Case Study: Regional Drought Monitoring Program

Module 9: Water Quality Monitoring and Environmental Assessment

·       Water Quality Indicators

·       Pollution Source Mapping

·       Water Quality Data Analysis

·       Environmental Monitoring Systems

·       Aquatic Ecosystem Assessment

·       Case Study: Watershed Water Quality Monitoring Project

Module 10: Integrated Water Resources Management

·       IWRM Principles and Practices

·       Water Allocation Planning

·       Stakeholder Participation Approaches

·       Policy and Regulatory Frameworks

·       Sustainable Water Management Strategies

·       Case Study: Integrated Water Resources Management Initiative

Module 11: GIS Dashboards and Decision Support Systems

·       Hydrological Dashboard Development

·       Data Visualization Techniques

·       Web GIS Applications

·       Reporting and Communication Tools

·       Decision Support Frameworks

·       Case Study: Water Resources Information System

Module 12: Emerging Technologies and Future Trends

·       Artificial Intelligence in Hydrology

·       IoT Applications for Water Monitoring

·       Drone Mapping for Water Resources

·       Cloud GIS Technologies

·       Climate Resilience and Innovation

·       Case Study: Smart Water Management System

General Information

1.     Customized Training: All our courses can be tailored to meet the specific needs of participants.

2.     Language Proficiency: Participants should have a good command of the English language.

3.     Comprehensive Learning: Our training includes well-structured presentations, practical exercises, web-based tutorials, and collaborative group work. Our facilitators are seasoned experts with over a decade of experience.

4.     Certification: Upon successful completion of training, participants will receive a certificate from Foscore Development Center (FDC-K).

5.     Training Locations: Training sessions are conducted at Foscore Development Center (FDC-K) centers. We also offer options for in-house and online training, customized to the client's schedule.

6.     Flexible Duration: Course durations are adaptable, and content can be adjusted to fit the required number of days.

7.     Onsite Training Inclusions: The course fee for onsite training covers facilitation, training materials, two coffee breaks, a buffet lunch, and a Certificate of Successful Completion. Participants are responsible for their travel expenses, airport transfers, visa applications, dinners, health/accident insurance, and personal expenses.

8.     Additional Services: Accommodation, pickup services, freight booking, and visa processing arrangements are available upon request at discounted rates.

9.     Equipment: Tablets and laptops can be provided to participants at an additional cost.

10.  Post-Training Support: We offer one year of free consultation and coaching after the course.

11.  Group Discounts: Register as a group of more than two and enjoy a discount ranging from 10% to 50%.

12.  Payment Terms: Payment should be made before the commencement of the training or as mutually agreed upon, to the Foscore Development Center account. This ensures better preparation for your training.

13.  Contact Us: For any inquiries, please reach out to us at training@fdc-k.org or call us at +254712260031.

14.  Website: Visit our website at www.fdc-k.org for more information.

 

 

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