
Environmental Geologist Course
Master the science and practice of environmental geology, from groundwater characterisation to contaminated site remediation. This course equips you with the technical skills employers and regulators demand, covering everything from contaminant fate and transport to risk-based cleanup goal derivation. Build the expertise to lead real-world site investigations with confidence.
What you will learn:
You will develop a thorough understanding of Earth systems, hydrogeology, and contaminant behaviour in the subsurface. The course covers site investigation methods, geophysical techniques, and conceptual site model development. You will learn to conduct human health and ecological risk assessments and calculate defensible cleanup goals. Remediation technologies including pump-and-treat, in-situ chemical oxidation, and soil vapour extraction are covered in detail. You will also gain practical skills in GIS mapping, technical report writing, regulatory compliance, and field safety. By the end, you will be prepared to manage complex environmental projects from initial assessment through site closure.
How you study in practice Environmental Geologist Course
How you practise Environmental Geologist Course
For companies looking to train their teams
With Dedika for businesses, the course includes exercises and examples tailored to your company and its specific needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Environmental Geology
Foundations of Environmental Geology
Lesson 1 • Earth Materials and Rock Classification
Covers igneous, sedimentary, and metamorphic rock identification and formation. Provides the material basis for understanding subsurface conditions at environmental sites.
Lesson 2 • Geomorphology and Landscape Processes
Examines landform development, erosion, and deposition in relation to site stability. Geomorphic context informs risk assessment and land-use decisions.
Lesson 3 • Structural Geology Essentials
Covers faults, folds, joints, and fracture systems and their influence on fluid flow. Structural features control contaminant migration pathways in the subsurface.
Lesson 4 • Soil Formation and Classification
Examines pedogenic processes, soil horizons, and standard classification systems. Links soil properties to contaminant mobility and site remediation planning.
Lesson 5 • Geological Time and Stratigraphy
Introduces the geological time scale, stratigraphic principles, and correlation methods. Enables accurate interpretation of subsurface layering at contaminated sites.
Chapter 2HideHide detailsSee detailsHydrogeology and Groundwater Systems
Hydrogeology and Groundwater Systems
Lesson 1 • Recharge, Discharge, and Water Budgets
Quantifies groundwater recharge mechanisms, discharge zones, and basin-scale water budgets. Supports sustainable yield assessments and source water protection.
Lesson 2 • Groundwater Flow Principles
Applies Darcy's Law and hydraulic gradient analysis to quantify groundwater movement. Flow direction and velocity data are essential for plume delineation.
Lesson 3 • Vadose Zone Hydrology
Examines unsaturated zone moisture movement, capillary pressure, and infiltration processes. Vadose zone behaviour governs contaminant leaching to groundwater.
Lesson 4 • Aquifer Types and Properties
Defines confined, unconfined, and perched aquifers and their hydraulic characteristics. Aquifer type determines monitoring well design and pumping test interpretation.
Lesson 5 • Aquifer Testing and Analysis
Covers pumping test design, data collection, and analytical methods for aquifer parameter estimation. Results directly support remediation system design.
Chapter 3HideHide detailsSee detailsContaminant Fate and Transport
Contaminant Fate and Transport
Lesson 1 • Dense and Light Non-Aqueous Phase Liquids
Analyses DNAPL and LNAPL behaviour, entrapment, and dissolution in the subsurface. Phase distribution controls remediation complexity and cleanup timeframes.
Lesson 2 • Chemical Fate Processes
Examines hydrolysis, oxidation-reduction reactions, precipitation, and complexation affecting contaminants. Chemical fate controls long-term contaminant persistence and mobility.
Lesson 3 • Physical Transport Processes
Covers advection, dispersion, and diffusion as primary mechanisms of contaminant movement. These processes determine plume geometry and monitoring network design.
Lesson 4 • Contaminant Source Characterisation
Identifies common contaminant classes, source types, and release mechanisms at industrial and municipal sites. Source definition is the first step in conceptual site model development.
Lesson 5 • Biological Transformation Processes
Covers microbial degradation pathways, electron acceptor utilisation, and biodegradation kinetics. Biological processes are central to natural attenuation and bioremediation design.
Chapter 4HideHide detailsSee detailsEnvironmental Site Investigation Methods
Environmental Site Investigation Methods
Lesson 1 • Soil and Groundwater Sampling Protocols
Establishes low-flow purging, passive sampling, and soil sampling procedures for representative data collection. Sampling protocols directly affect analytical data quality.
Lesson 2 • Quality Assurance and Data Management
Defines QA/QC requirements, chain-of-custody procedures, and data validation criteria. Data quality objectives must be established before fieldwork begins.
Lesson 3 • Monitoring Well Design and Installation
Covers screen interval selection, filter pack design, grouting, and well development procedures. Proper installation ensures representative groundwater samples.
Lesson 4 • Subsurface Drilling and Sampling Methods
Compares hollow-stem auger, direct-push, rotary, and sonic drilling for soil and rock sampling. Method selection affects sample quality and data usability.
Lesson 5 • Phase I Environmental Site Assessment
Covers records review, site reconnaissance, and interview protocols for identifying recognised environmental conditions. Phase I findings drive Phase II scope and sampling decisions.
Chapter 5HideHide detailsSee detailsGeophysical Investigation Techniques
Geophysical Investigation Techniques
Lesson 1 • Borehole Geophysical Logging
Uses natural gamma, resistivity, caliper, and acoustic logs to characterise lithology and fractures. Borehole logs calibrate surface geophysical surveys and guide screen placement.
Lesson 2 • Integrating Geophysics with Borehole Data
Combines geophysical profiles with borehole logs to build three-dimensional subsurface models. Integration reduces uncertainty and optimises subsequent drilling programmes.
Lesson 3 • Magnetic and Gravity Surveys
Applies magnetometry and microgravity to locate buried tanks, drums, and subsurface voids. These passive methods are cost-effective for preliminary site screening.
Lesson 4 • Seismic Methods for Site Characterisation
Applies refraction, reflection, and surface wave methods to map bedrock depth and soil layering. Seismic data complement borehole logs for three-dimensional site models.
Lesson 5 • Electrical and Electromagnetic Methods
Covers electrical resistivity tomography, electromagnetic induction, and ground-penetrating radar. These methods detect buried infrastructure, contaminant plumes, and lithologic boundaries.
Chapter 6HideHide detailsSee detailsConceptual Site Model Development
Conceptual Site Model Development
Lesson 1 • Data Gaps and Iterative Investigation
Evaluates CSM data gaps and designs targeted investigations to reduce uncertainty. Iterative refinement improves remedy selection confidence and regulatory acceptance.
Lesson 2 • Geologic and Hydrogeologic Synthesis
Integrates borehole logs, geophysics, and aquifer test data into a unified subsurface model. Synthesis reveals preferential flow paths and contaminant migration routes.
Lesson 3 • CSM Framework and Components
Defines the source-pathway-receptor framework and required CSM elements. A complete CSM links all site data into a coherent narrative for decision-making.
Lesson 4 • Contaminant Distribution Mapping
Maps contaminant concentrations in soil, groundwater, and soil vapour using spatial interpolation. Distribution maps define plume boundaries and mass loading estimates.
Lesson 5 • Exposure Pathway Analysis
Identifies complete and incomplete exposure pathways for current and future land uses. Pathway analysis determines which receptors require protective action.
Chapter 7HideHide detailsSee detailsHuman Health and Ecological Risk Assessment
Human Health and Ecological Risk Assessment
Lesson 1 • Toxicology for Environmental Geologists
Covers carcinogenic and non-carcinogenic toxicity values, routes of exposure, and bioavailability. Toxicity data selection directly affects calculated risk estimates.
Lesson 2 • Risk Assessment Framework Overview
Introduces the four-step risk assessment process: hazard identification, dose-response, exposure assessment, and risk characterisation. Each step feeds directly into cleanup goal derivation.
Lesson 3 • Ecological Risk Assessment Principles
Applies problem formulation, exposure-response analysis, and risk characterisation to ecological receptors. Ecological risk drives cleanup goals at sites with sensitive habitats.
Lesson 4 • Risk-Based Cleanup Goal Derivation
Calculates risk-based screening levels for soil, groundwater, and air using toxicity and exposure data. Cleanup goals define remediation targets and regulatory compliance endpoints.
Lesson 5 • Exposure Assessment and Intake Calculations
Quantifies contaminant intake for residential, commercial, and industrial receptor scenarios. Intake calculations translate concentration data into risk estimates.
Chapter 8HideHide detailsSee detailsRemediation Technologies and Site Closure
Remediation Technologies and Site Closure
Lesson 1 • Site Closure and Long-Term Stewardship
Covers closure criteria, post-remediation monitoring, institutional controls, and site reuse planning. Closure documentation must demonstrate that cleanup goals have been achieved.
Lesson 2 • Soil Vapour Extraction and Air Sparging
Applies SVE and air sparging to remove volatile contaminants from the vadose zone and saturated zone. System design requires vapour flow modelling and off-gas treatment planning.
Lesson 3 • In-Situ Chemical and Biological Remediation
Covers in-situ chemical oxidation, reduction, and enhanced bioremediation design and injection. Amendment delivery and distribution are critical to treatment effectiveness.
Lesson 4 • Pump-and-Treat and Permeable Reactive Barriers
Designs extraction well networks and permeable reactive barriers for plume containment and mass removal. Hydraulic capture zone analysis ensures containment effectiveness.
Lesson 5 • Remediation Technology Selection
Compares excavation, pump-and-treat, in-situ chemical, biological, and thermal technologies. Technology selection is driven by contaminant type, geology, and cleanup goals.
Your valid completion certificate
This course is for you:
Geology graduates: ready to specialize in environmental and subsurface work.
Environmental consultants: seeking deeper technical grounding in contaminated site work.
Civil engineers: needing hydrogeology and soil contamination knowledge for projects.
Career changers: transitioning from general science into environmental fieldwork roles.
Regulatory staff: wanting stronger technical fluency to evaluate investigation reports.
Land developers: needing to understand site liability and contamination assessment processes.
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