
Climate Science Course
Master the science behind Earth's changing climate, from atmospheric physics to global policy frameworks. This course gives you the analytical tools to understand climate data, evaluate mitigation strategies, and communicate findings with confidence. Whether you work in policy, research, finance, or sustainability, this is the foundation you need.
What you will learn:
You will build a rigorous understanding of how Earth's climate system works, including energy balance, greenhouse gas dynamics, and feedback mechanisms. You will learn to interpret observational records, palaeoclimate proxies, and satellite data to detect and attribute climate change. The course covers climate modelling, emission scenarios, and projection uncertainty so you can read scientific literature critically. You will also examine mitigation strategies across energy, transport, and land use sectors, alongside adaptation frameworks for vulnerable communities. Topics in climate finance, justice, governance, and emerging technologies round out a comprehensive, science-grounded curriculum.
How you study in practice Climate Science Course
How you practise Climate Science Course
For businesses looking to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Earth's Climate System
Foundations of Earth's Climate System
Lesson 1 • The Greenhouse Effect
Explains natural and enhanced greenhouse mechanisms at the molecular level. Connects radiative forcing to surface temperature changes.
Lesson 2 • Atmospheric Composition and Structure
Covers atmospheric layers, gas concentrations, and aerosols. Provides the physical context for understanding greenhouse gas behaviour.
Lesson 3 • Climate System Components
Introduces atmosphere, hydrosphere, cryosphere, biosphere, and lithosphere as interacting subsystems. Shows how feedbacks link these components.
Lesson 4 • Defining Climate vs. Weather
Distinguishes climate from weather using timescales and spatial scales. Builds precise vocabulary essential for interpreting all subsequent scientific content.
Lesson 5 • Earth's Energy Budget
Explains incoming solar radiation, albedo, and outgoing infrared energy. Establishes the energy balance concept underpinning all climate dynamics.
Chapter 2HideHide detailsSee detailsClimate Drivers and Forcing Mechanisms
Climate Drivers and Forcing Mechanisms
Lesson 1 • Land Use and Surface Albedo Changes
Examines deforestation, urbanisation, and agriculture as surface forcing agents. Connects land cover change to regional and global temperature responses.
Lesson 2 • Aerosol Forcing and Interactions
Analyses direct and indirect aerosol effects on radiation and cloud formation. Highlights aerosols as a major source of climate forcing uncertainty.
Lesson 3 • Natural Climate Forcings
Covers solar variability, volcanic eruptions, and orbital cycles as natural drivers. Grounds students in baseline variability before examining human influences.
Lesson 4 • Greenhouse Gas Emissions
Quantifies emissions of CO2, methane, nitrous oxide, and fluorinated gases by sector. Links emission sources to observed atmospheric concentration trends.
Lesson 5 • Cumulative Anthropogenic Forcing
Synthesises all human-caused forcings into a net radiative forcing estimate. Prepares students to interpret observed warming in terms of forcing attribution.
Chapter 3HideHide detailsSee detailsClimate Feedbacks and Sensitivity
Climate Feedbacks and Sensitivity
Lesson 1 • Water Vapour and Lapse Rate Feedbacks
Examines the strongest positive feedback in the climate system and its lapse rate counterpart. Shows how these feedbacks nearly double warming from CO2 alone.
Lesson 2 • Positive and Negative Feedbacks
Defines feedback loops and classifies them as amplifying or stabilising. Establishes the conceptual framework for all subsequent feedback analysis.
Lesson 3 • Equilibrium Climate Sensitivity
Defines ECS and transient climate response as key sensitivity metrics. Students interpret sensitivity ranges and their implications for future warming projections.
Lesson 4 • Ice-Albedo and Surface Feedbacks
Covers polar amplification driven by ice and snow loss. Connects surface albedo changes to accelerated warming at high latitudes.
Lesson 5 • Cloud Feedbacks and Uncertainty
Addresses the largest source of uncertainty in climate sensitivity through cloud behaviour. Distinguishes low-cloud and high-cloud feedback responses.
Chapter 4HideHide detailsSee detailsObserving and Measuring Climate Change
Observing and Measuring Climate Change
Lesson 1 • Surface Temperature Records
Covers land and ocean temperature measurement networks and homogenisation methods. Students assess how the global mean temperature record is constructed.
Lesson 2 • Detection and Attribution Methods
Applies statistical and model-based methods to attribute observed changes to specific causes. Students distinguish natural variability from forced climate signals.
Lesson 3 • Satellite and Remote Sensing Data
Introduces satellite platforms measuring temperature, sea level, ice extent, and vegetation. Highlights advantages and limitations of remote sensing records.
Lesson 4 • Paleoclimate Proxies
Examines ice cores, tree rings, corals, and sediments as indirect climate records. Extends the observational baseline beyond the instrumental period.
Lesson 5 • Atmospheric Composition Monitoring
Covers continuous monitoring of CO2, methane, and other trace gases. Connects concentration trends to emission inventories and carbon cycle analysis.
Chapter 5HideHide detailsSee detailsClimate Modelling and Projections
Climate Modelling and Projections
Lesson 1 • Interpreting Projection Uncertainty
Decomposes projection uncertainty into scenario, model, and internal variability components. Students communicate uncertainty ranges to non-specialist audiences.
Lesson 2 • Types of Climate Models
Surveys energy balance models, regional models, and Earth system models by complexity. Matches model type to appropriate scientific questions.
Lesson 3 • Emission Scenarios and Pathways
Introduces shared socioeconomic pathways and representative concentration pathways. Students map scenario assumptions to projected warming outcomes.
Lesson 4 • Model Physics and Parameterisation
Explains how sub-grid processes are parameterised in climate models. Identifies parameterisation as a key source of inter-model spread.
Lesson 5 • Model Validation and Bias Correction
Covers techniques for evaluating model performance against observations. Addresses systematic biases and their correction for impact studies.
Chapter 6HideHide detailsSee detailsObserved and Projected Climate Impacts
Observed and Projected Climate Impacts
Lesson 1 • Food, Water, and Health Impacts
Assesses climate risks to agricultural yields, freshwater availability, and disease vectors. Highlights differential vulnerability across regions and populations.
Lesson 2 • Sea Level Rise and Coastal Impacts
Quantifies thermal expansion and ice sheet contributions to sea level rise. Links projected rise to coastal flooding, erosion, and saltwater intrusion.
Lesson 3 • Ecosystem and Biodiversity Impacts
Examines species range shifts, phenological changes, and coral bleaching. Connects ecosystem disruption to cascading effects on human systems.
Lesson 4 • Extreme Weather Events
Analyses how climate change alters frequency and intensity of heat waves, floods, and storms. Applies attribution science to specific event types.
Lesson 5 • Tipping Points and Abrupt Changes
Identifies critical thresholds in the climate system that could trigger irreversible change. Evaluates evidence for tipping cascades and their global consequences.
Chapter 7HideHide detailsSee detailsClimate Change Mitigation Strategies
Climate Change Mitigation Strategies
Lesson 1 • Carbon Dioxide Removal Approaches
Surveys biological and technological CDR methods including BECCS, DAC, and enhanced weathering. Evaluates scalability, cost, and co-benefits of each approach.
Lesson 2 • Transport and Industry Decarbonisation
Examines electrification, hydrogen, and efficiency improvements in hard-to-abate sectors. Addresses unique challenges of industrial process emissions.
Lesson 3 • Energy System Decarbonisation
Covers renewable energy deployment, nuclear power, and grid modernisation as decarbonisation pathways. Quantifies emissions reduction potential by technology.
Lesson 4 • Mitigation Policy Instruments
Compares carbon pricing, regulations, and technology standards as policy tools. Connects instrument design to emissions reduction effectiveness and equity.
Lesson 5 • Land Use and Agriculture Mitigation
Analyses emissions reduction and carbon sequestration through land management. Covers sustainable agriculture, reforestation, and soil carbon practices.
Chapter 8HideHide detailsSee detailsClimate Adaptation and Resilience
Climate Adaptation and Resilience
Lesson 1 • Integrating Mitigation and Adaptation
Synthesises mitigation and adaptation into integrated climate response strategies. Identifies synergies, trade-offs, and co-benefits across both response types.
Lesson 2 • Urban and Coastal Adaptation
Covers heat-resilient urban design, managed retreat, and coastal protection measures. Applies adaptation principles to high-exposure urban and coastal settings.
Lesson 3 • Adaptation Frameworks and Principles
Introduces incremental, transformational, and ecosystem-based adaptation frameworks. Establishes criteria for evaluating adaptation effectiveness and equity.
Lesson 4 • Climate Risk Assessment
Applies hazard, exposure, and vulnerability frameworks to assess climate risk. Students produce risk profiles for specific sectors and geographic contexts.
Lesson 5 • Water and Food System Adaptation
Examines drought-resilient agriculture, water storage, and crop diversification strategies. Links adaptation measures to food and water security outcomes.
Your valid completion certificate
This course is for you:
Sustainability professionals: seeking scientific depth behind the work they already do.
Policy analysts: needing rigorous climate evidence to support regulatory recommendations.
Finance professionals: integrating physical and transition climate risks into investment decisions.
Journalists and communicators: wanting accurate scientific grounding for climate storytelling.
Career changers: moving into climate roles from engineering, law, or public health backgrounds.
Graduate students: building interdisciplinary fluency across climate science and applied fields.
What our students say
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