
Civil Engineer Course
Master the full spectrum of civil engineering — from structural mechanics and geotechnical analysis to transportation design and construction management. This comprehensive course gives you the technical depth and practical tools to tackle real-world infrastructure challenges. Build the expertise that employers and clients demand from a competent, well-rounded civil engineer.
What you will learn:
This course covers every major discipline in civil engineering, starting with engineering mechanics and mechanics of materials, then advancing into structural analysis, reinforced concrete and steel design, and geotechnical engineering. You will study hydraulics, hydrology, and transportation engineering, gaining the skills to design roads, drainage systems, and water infrastructure. Construction management topics include scheduling, cost estimating, contracts, and quality control. Supplementary chapters introduce BIM, GIS, environmental engineering, risk management, and emerging technologies such as AI and digital twins. By the end, you will have a complete, job-ready foundation in civil engineering practice.
How you study in practice Civil Engineer Course
How you practise Civil Engineer Course
For companies looking to train their teams
With Dedika for Businesses, the course includes exercises and examples tailored to your own business and the specific needs of your company.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Civil Engineering
Foundations of Civil Engineering
Lesson 1 • Units, Measurements, and Engineering Math
This reviews SI and imperial unit systems, dimensional analysis, and applied mathematics. It builds the quantitative foundation required for all technical chapters.
Lesson 2 • Engineering Drawing and CAD Basics
This introduces orthographic projection, plan reading, and basic CAD tools. It enables students to interpret and produce standard engineering drawings.
Lesson 3 • Professional Roles and Ethics
This defines the civil engineer's responsibilities to clients, the public, and the environment. It connects ethical frameworks to everyday engineering decisions.
Lesson 4 • Introduction to Engineering Materials
This surveys concrete, steel, timber, and soil as structural materials. It establishes material awareness needed before studying mechanics and design.
Lesson 5 • Scope and History of Civil Engineering
This traces civil engineering from ancient infrastructure to modern practice. It provides context for understanding how the profession evolved and why its principles matter.
Chapter 2HideHide detailsSee detailsEngineering Mechanics and Statics
Engineering Mechanics and Statics
Lesson 1 • Force Systems and Vectors
This covers vector representation, resultant forces, and free-body diagrams. It forms the analytical language used throughout structural analysis.
Lesson 2 • Equilibrium of Rigid Bodies
This applies Newton's laws to determine conditions for static equilibrium. It directly supports beam and truss analysis in later chapters.
Lesson 3 • Trusses and Frames
This analyses pin-jointed trusses using method of joints and method of sections. It prepares students for structural member design.
Lesson 4 • Friction and Applications
This examines dry friction, wedges, and belt friction relevant to retaining structures and mechanical systems.
Lesson 5 • Centroids and Moments of Inertia
This calculates geometric properties of cross-sections critical for beam bending and column buckling analysis.
Chapter 3HideHide detailsSee detailsMechanics of Materials
Mechanics of Materials
Lesson 1 • Beam Deflection and Column Buckling
This computes beam deflections using integration and energy methods, and applies Euler's buckling formula to columns.
Lesson 2 • Bending of Beams
This develops the flexure formula and shear flow for beams under transverse loading. It directly supports structural beam sizing and selection.
Lesson 3 • Axial Load and Deformation
This calculates elongation, thermal effects, and statically indeterminate axial members. It connects material properties to real structural behaviour.
Lesson 4 • Stress and Strain Fundamentals
This defines normal and shear stress, strain, and Hooke's Law. It establishes the stress-strain relationship used in all subsequent design calculations.
Lesson 5 • Torsion in Circular Shafts
This derives shear stress and angle of twist for solid and hollow circular members. It applies to mechanical and structural shaft design.
Chapter 4HideHide detailsSee detailsStructural Analysis and Design
Structural Analysis and Design
Lesson 1 • Foundation Types and Selection
This compares shallow and deep foundation systems and links structural loads to geotechnical capacity requirements.
Lesson 2 • Reinforced Concrete Design Principles
This covers flexural, shear, and compression design of reinforced concrete members using strength design methods.
Lesson 3 • Structural Loads and Load Combinations
This identifies dead, live, wind, seismic, and environmental loads and their combinations. It establishes the loading basis for all structural design work.
Lesson 4 • Determinate and Indeterminate Structures
This distinguishes statically determinate from indeterminate structures and applies appropriate analysis methods.
Lesson 5 • Steel Structure Design Principles
This applies limit-state design to steel beams, columns, and connections using standard section properties.
Chapter 5HideHide detailsSee detailsGeotechnical Engineering Fundamentals
Geotechnical Engineering Fundamentals
Lesson 1 • Effective Stress and Consolidation
This applies the effective stress principle and Terzaghi's consolidation theory to predict settlement over time.
Lesson 2 • Soil Compaction and Permeability
This analyses compaction curves, field control methods, and Darcy's Law for water flow through soil.
Lesson 3 • Shear Strength of Soils
This determines shear strength parameters using laboratory and field tests for slope and foundation design.
Lesson 4 • Soil Composition and Classification
This examines soil phase relationships, grain size distribution, and plasticity to classify soils systematically.
Lesson 5 • Lateral Earth Pressure and Retaining Walls
This calculates active and passive earth pressures and applies them to gravity and cantilever retaining wall design.
Chapter 6HideHide detailsSee detailsHydraulics and Hydrology
Hydraulics and Hydrology
Lesson 1 • Fluid Properties and Hydrostatics
This reviews fluid properties, pressure distribution, and hydrostatic forces on submerged surfaces. It provides the physical basis for hydraulic design.
Lesson 2 • Pipe Flow and Pumping Systems
This applies Bernoulli's equation, friction losses, and pump curves to pressurised pipe network design.
Lesson 3 • Open-Channel Flow
This analyses uniform and gradually varied flow in channels using Manning's equation and energy principles.
Lesson 4 • Stormwater and Drainage Design
This designs storm sewers, culverts, and detention basins to manage urban and rural runoff safely.
Lesson 5 • Hydrological Analysis
This quantifies precipitation, infiltration, and runoff using the rational method and unit hydrograph techniques.
Chapter 7HideHide detailsSee detailsTransportation Engineering
Transportation Engineering
Lesson 1 • Pavement Materials and Design
This compares flexible and rigid pavement systems and applies structural design methods for traffic loading.
Lesson 2 • Transportation Planning Basics
This introduces travel demand modelling, mode choice, and network evaluation for planning-level decisions.
Lesson 3 • Geometric Design of Highways
This applies sight distance, horizontal alignment, and vertical profile standards to highway geometric design.
Lesson 4 • Intersection and Signal Design
This designs at-grade intersections and signal timing plans to optimise safety and traffic flow.
Lesson 5 • Traffic Flow and Analysis
This quantifies traffic volume, speed, density, and capacity using fundamental flow theory and field data.
Chapter 8HideHide detailsSee detailsConstruction Management and Project Delivery
Construction Management and Project Delivery
Lesson 1 • Project Planning and Scheduling
This develops work breakdown structures, CPM networks, and Gantt charts to plan and control project timelines.
Lesson 2 • Cost Estimating and Budget Control
This prepares quantity takeoffs, unit-price estimates, and earned value analyses to control project costs.
Lesson 3 • Quality Assurance and Control
This implements inspection plans, testing protocols, and nonconformance management to ensure construction quality.
Lesson 4 • Health, Safety, and Site Management
This applies hazard identification, safety planning, and site logistics to maintain a safe construction environment.
Lesson 5 • Construction Contracts and Procurement
This compares contract types, procurement methods, and risk allocation strategies used in civil construction.
Your valid completion certificate
This course is for you:
Recent high school graduates: eager to pursue a civil engineering degree or career.
Construction site supervisors: wanting to deepen their technical engineering knowledge base.
Architecture graduates: looking to expand into structural and infrastructure design work.
Career changers from trades: ready to transition into professional engineering roles formally.
Junior civil engineers: seeking to fill gaps across multiple sub-disciplines simultaneously.
Urban planning professionals: aiming to strengthen their technical foundation in infrastructure systems.
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