
Paleontologist Course
Master the full spectrum of palaeontology — from reading rock sequences in the field to reconstructing ancient ecosystems in the lab. This course gives you the scientific tools, technical skills, and professional knowledge to work with fossils at a serious level. Whether you are pursuing research, museum work, or fieldwork, this is where your palaeontology career begins.
What you will learn:
You will build a complete foundation in palaeontology, covering geological time, stratigraphy, fossil identification, and the scientific method as applied to the fossil record. You will learn systematic field survey techniques, excavation methods, and laboratory preparation skills including mechanical and chemical approaches. The course covers phylogenetic analysis, palaeoecological reconstruction, and geochemical methods for interpreting ancient environments. You will also gain practical knowledge in digital tools such as photogrammetry and CT scanning, museum curation standards, science communication, and the legal and ethical frameworks governing fossil collection and research.
How you study in practice Paleontologist Course
How you practise Paleontologist 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 Palaeontology
Foundations of Palaeontology
Lesson 1 • Classification and Taxonomy
Covers Linnaean hierarchy and phylogenetic nomenclature for fossil organisms. Enables accurate identification and communication of specimens.
Lesson 2 • Basics of Fossilisation
Explains taphonomic processes that convert organisms into fossils. Connects preservation mode to the quality and bias of the fossil record.
Lesson 3 • Scientific Method in Palaeontology
Applies hypothesis testing and peer review to fossil-based research. Grounds all subsequent fieldwork and analysis in rigorous scientific practice.
Lesson 4 • History and Scope of Palaeontology
Traces the discipline from early fossil collectors to modern science. Establishes why historical context shapes current research questions.
Lesson 5 • Geological Time and Stratigraphy
Introduces the geologic time scale and stratigraphic principles. Provides the temporal framework essential for interpreting all fossil data.
Chapter 2HideHide detailsSee detailsGeology for Palaeontologists
Geology for Palaeontologists
Lesson 1 • Structural Geology and Outcrop Reading
Introduces folds, faults, and unconformities as they affect fossil distribution. Prevents misinterpretation of stratigraphic position in deformed terrains.
Lesson 2 • Stratigraphic Mapping Techniques
Teaches measured section construction and correlation across outcrops. Produces accurate spatial records of fossil occurrences within a formation.
Lesson 3 • Geochronology Methods
Covers radiometric, magnetostratigraphic, and biostratigraphic dating tools. Allows precise age assignment to fossil-bearing horizons.
Lesson 4 • Rock Types and Fossil Potential
Distinguishes sedimentary, igneous, and metamorphic rocks by fossil-bearing potential. Directs prospecting effort toward productive lithologies.
Lesson 5 • Sedimentary Environments
Examines fluvial, marine, lacustrine, and aeolian settings and their fossil assemblages. Links environment to expected organism types and preservation quality.
Chapter 3HideHide detailsSee detailsField Prospecting and Survey Methods
Field Prospecting and Survey Methods
Lesson 1 • Pre-Field Planning and Permits
Covers literature review, map analysis, and regulatory permit acquisition. Ensures legal compliance and efficient use of field time before departure.
Lesson 2 • Field Safety and Environmental Ethics
Addresses hazards, first aid protocols, and minimal-impact field practices. Protects personnel and preserves site integrity for future researchers.
Lesson 3 • Field Documentation and Notebooks
Establishes standards for written, photographic, and sketch-based field records. Produces legally and scientifically defensible documentation of discoveries.
Lesson 4 • Surface Survey Strategies
Teaches transect, grid, and opportunistic survey designs for fossil detection. Matches survey design to terrain type and research objectives.
Lesson 5 • GPS and Spatial Data Collection
Applies GPS devices and GIS software to record precise fossil localities. Creates reproducible spatial datasets for publication and future revisits.
Chapter 4HideHide detailsSee detailsExcavation Techniques and Site Management
Excavation Techniques and Site Management
Lesson 1 • Hand Tools and Mechanical Equipment
Covers selection and safe use of picks, brushes, air scribes, and heavy machinery. Matches tool choice to matrix hardness and specimen fragility.
Lesson 2 • Excavation Planning and Grid Setup
Establishes site datum, grid systems, and excavation strategy before digging begins. Ensures spatial relationships amongst specimens are preserved throughout recovery.
Lesson 3 • Specimen Packaging and Transport
Covers labelling, padding, crating, and vehicle loading for safe specimen transport. Maintains specimen integrity and chain-of-custody from field to lab.
Lesson 4 • Consolidants and Field Stabilisation
Introduces chemical consolidants and mechanical supports for fragile specimens. Prevents specimen loss during exposure and transport.
Lesson 5 • In-Situ Documentation and Mapping
Records three-dimensional position, orientation, and association of each specimen. Provides irreplaceable contextual data lost if documentation is skipped.
Chapter 5HideHide detailsSee detailsLaboratory Preparation Techniques
Laboratory Preparation Techniques
Lesson 1 • Mechanical Preparation Methods
Teaches use of air scribes, vibro-tools, and micro-blasters to remove matrix. Develops fine motor control for exposing delicate anatomical features.
Lesson 2 • Moulding and Casting
Produces silicone moulds and resin casts for research, education, and display. Enables specimen sharing without risking original material.
Lesson 3 • Chemical Preparation and Acid Techniques
Applies acetic and formic acid baths to dissolve carbonate matrix from bone. Requires strict safety protocols and neutralisation procedures.
Lesson 4 • Laboratory Setup and Safety
Establishes workspace organisation, ventilation, and chemical handling protocols. Creates a safe, efficient environment for all preparation activities.
Lesson 5 • Consolidation and Repair
Covers adhesive selection, gap filling, and structural repair of broken specimens. Produces stable, reversible repairs that meet conservation standards.
Chapter 6HideHide detailsSee detailsFossil Identification and Morphological Analysis
Fossil Identification and Morphological Analysis
Lesson 1 • Plant and Microfossil Identification
Covers vascular plants, pollen, spores, foraminifera, and conodonts. Expands identification competency to groups critical for biostratigraphy.
Lesson 2 • Vertebrate Fossil Identification
Identifies fish, amphibians, reptiles, birds, and mammals from skeletal elements. Develops comparative anatomy skills critical for vertebrate palaeontology.
Lesson 3 • Anatomical Terminology and Orientation
Establishes directional terms, body planes, and skeletal nomenclature for major groups. Enables precise, unambiguous communication of morphological observations.
Lesson 4 • Invertebrate Fossil Identification
Covers key phyla including molluscs, echinoderms, arthropods, and corals. Builds identification skills for the most abundant fossil groups.
Lesson 5 • Morphometric and Comparative Analysis
Applies linear measurements, landmark-based morphometrics, and comparative collections. Quantifies morphological variation for taxonomic and evolutionary studies.
Chapter 7HideHide detailsSee detailsPalaeoecology and Palaeoenvironmental Reconstruction
Palaeoecology and Palaeoenvironmental Reconstruction
Lesson 1 • Palaeoecological Guilds and Food Webs
Assigns organisms to feeding guilds and reconstructs trophic networks. Reveals community structure and energy flow in ancient ecosystems.
Lesson 2 • Taphonomy and Assemblage Interpretation
Distinguishes biological from physical biases in fossil assemblages. Corrects for taphonomic filters before drawing ecological conclusions.
Lesson 3 • Palaeobiogeography
Maps fossil distributions to reconstruct ancient continental configurations and migration routes. Integrates plate tectonics with biogeographic patterns.
Lesson 4 • Mass Extinctions and Recovery
Analyses causes, selectivity, and ecological recovery patterns of major extinction events. Contextualises modern biodiversity loss within deep-time precedents.
Lesson 5 • Palaeoclimate Proxies
Uses stable isotopes, leaf morphology, and sedimentary features as climate indicators. Quantifies past temperature, precipitation, and seasonality.
Chapter 8HideHide detailsSee detailsPhylogenetics and Evolutionary Analysis
Phylogenetics and Evolutionary Analysis
Lesson 1 • Principles of Phylogenetic Inference
Introduces parsimony, maximum likelihood, and Bayesian methods for tree building. Establishes the logical basis for all subsequent phylogenetic work.
Lesson 2 • Molecular Clocks and Tip Dating
Integrates fossil calibration points with molecular data to estimate divergence times. Bridges morphological and genomic approaches to evolutionary timing.
Lesson 3 • Macroevolutionary Patterns and Rates
Quantifies speciation, extinction, and morphological evolution rates across lineages. Connects phylogenetic results to broader evolutionary theory.
Lesson 4 • Character Coding and Data Matrices
Teaches scoring morphological characters and constructing data matrices for analysis. Produces the primary input for all phylogenetic software.
Lesson 5 • Phylogenetic Software and Tree Interpretation
Applies TNT, PAUP*, and MrBayes to generate and evaluate phylogenetic trees. Develops ability to read, annotate, and critique published cladograms.
Your valid completion certificate
This course is for you:
Undergraduate student: building credentials for graduate school in palaeontology or geology.
Amateur fossil collector: wanting to apply rigorous scientific methods to their finds.
Museum volunteer: seeking professional-level curation and identification knowledge.
Biology or geology teacher: expanding subject expertise to include deep-time life science.
Career changer: transitioning from an unrelated field into natural history or geoscience work.
Field technician: formalizing practical excavation skills with systematic scientific training.
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