
Petroleum And Gas Engineer Course
Master the full technical scope of petroleum and gas engineering, from reservoir characterisation and drilling design to production optimisation and field development economics. This course delivers the practical skills operators, service companies, and energy firms demand from qualified engineers. Whether you're entering the industry or advancing your career, this is the most comprehensive petroleum engineering programme available.
What you will learn:
You will build a rigorous understanding of reservoir rock and fluid properties, subsurface pressure systems, and hydrocarbon classification. You will learn to design drilling programmes, select casing and cementing systems, and apply well control procedures. The course covers reservoir simulation, material balance methods, and pressure transient analysis for accurate reserves estimation. You will also study artificial lift design, hydraulic fracturing, enhanced oil recovery, and gas processing systems. Field development planning, petroleum economics, and HSE management round out your technical foundation. Advanced topics include unconventional resources, offshore engineering, digital oilfield tools, and energy transition strategies.
How you study practically Petroleum And Gas Engineer Course
How you practise Petroleum And Gas 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 way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Petroleum Engineering
Foundations of Petroleum Engineering
Lesson 1 • Introduction to the Petroleum Industry
Surveys the upstream, midstream, and downstream value chain and key engineering roles. Orients students to industry structure before technical depth begins.
Lesson 2 • Reservoir Rock Properties
Examines porosity, permeability, and wettability as controls on fluid storage and flow. Links petrophysical concepts to reservoir performance prediction.
Lesson 3 • Petroleum Fluid Properties
Analyses PVT behaviour, fluid composition, and phase diagrams for oil, gas, and condensate systems. Provides data inputs for reservoir and production calculations.
Lesson 4 • Subsurface Pressure and Temperature
Defines pressure regimes, geothermal gradients, and their impact on fluid behaviour. Underpins safe drilling and accurate reservoir modelling.
Lesson 5 • Origin and Classification of Hydrocarbons
Covers hydrocarbon formation, migration, and trap types. Establishes geological context essential for all subsequent reservoir and drilling topics.
Chapter 2HideHide detailsSee detailsDrilling Engineering Fundamentals
Drilling Engineering Fundamentals
Lesson 1 • Casing Design and Cementing
Covers burst, collapse, and tension load calculations for casing strings and cement job design. Ensures well integrity from spud to abandonment.
Lesson 2 • Drill Bit Selection and Performance
Analyses roller cone and PDC bit designs, dull grading, and weight-on-bit optimisation. Enables cost-per-foot minimisation through informed bit selection.
Lesson 3 • Drilling Hazards and Well Control
Identifies kicks, lost circulation, and stuck pipe causes and mitigation procedures. Prepares engineers to apply well control methods under pressure.
Lesson 4 • Drilling Fluids and Hydraulics
Examines mud types, rheological properties, and hydraulic optimisation for hole cleaning. Directly supports wellbore stability and formation damage prevention.
Lesson 5 • Well Planning and Trajectory Design
Covers casing seat selection, wellbore trajectory types, and anti-collision planning. Connects subsurface pressure knowledge to safe well architecture.
Chapter 3HideHide detailsSee detailsReservoir Engineering Principles
Reservoir Engineering Principles
Lesson 1 • Material Balance Methods
Applies the generalised material balance equation to oil and gas reservoirs for OOIP and OGIP estimation. Bridges drive mechanism theory to quantitative reserve assessment.
Lesson 2 • Decline Curve Analysis
Applies exponential, hyperbolic, and harmonic decline models to production data for reserve estimation. Connects historical production trends to future performance forecasting.
Lesson 3 • Pressure Transient Analysis
Interprets buildup and drawdown tests to determine permeability, skin, and reservoir boundaries. Validates reservoir model parameters derived from material balance.
Lesson 4 • Fluid Flow in Porous Media
Derives Darcy's law and its extensions for radial, linear, and multiphase flow. Provides the mathematical basis for well productivity and injectivity calculations.
Lesson 5 • Reservoir Drive Mechanisms
Classifies solution gas, gas cap, water, and compaction drives and their recovery efficiency. Enables selection of appropriate depletion or injection strategies.
Chapter 4HideHide detailsSee detailsProduction Engineering and Optimisation
Production Engineering and Optimisation
Lesson 1 • Artificial Lift Systems
Compares ESP, gas lift, rod pump, and PCP systems for candidate well selection and design. Enables engineers to match lift method to reservoir and fluid conditions.
Lesson 2 • Wellhead and Christmas Tree Equipment
Describes wellhead components, pressure ratings, and valve configurations for safe well control. Supports production operations and intervention planning.
Lesson 3 • Inflow and Outflow Performance
Constructs IPR and TPR curves to identify the natural flow operating point. Integrates reservoir deliverability with tubing and surface system constraints.
Lesson 4 • Production Chemistry and Flow Assurance
Addresses scale, corrosion, hydrate, and wax deposition mechanisms and mitigation strategies. Prevents production losses from flow assurance failures.
Lesson 5 • Well Intervention and Workover Operations
Covers coiled tubing, wireline, and workover rig applications for well restoration and stimulation. Connects production decline diagnosis to intervention decision-making.
Chapter 5HideHide detailsSee detailsWell Stimulation and Enhanced Recovery
Well Stimulation and Enhanced Recovery
Lesson 1 • Hydraulic Fracturing Execution and Evaluation
Covers pump schedule design, real-time monitoring, and post-fracture production analysis. Closes the loop between fracture design and field performance.
Lesson 2 • Water and Gas Injection Methods
Designs waterflooding and gas injection patterns for pressure maintenance and sweep efficiency. Extends primary recovery through secondary recovery techniques.
Lesson 3 • Matrix Acidising Design
Covers acid types, reaction kinetics, and placement techniques for sandstone and carbonate reservoirs. Restores near-wellbore permeability damaged during drilling or production.
Lesson 4 • Enhanced Oil Recovery Techniques
Evaluates thermal, chemical, and miscible EOR processes for tertiary recovery potential. Enables engineers to screen and design EOR pilots for mature fields.
Lesson 5 • Hydraulic Fracturing Fundamentals
Analyses fracture mechanics, fluid selection, and proppant transport for fracture design. Provides the basis for stimulating tight and conventional reservoirs.
Chapter 6HideHide detailsSee detailsNatural Gas Engineering and Processing
Natural Gas Engineering and Processing
Lesson 1 • NGL Recovery and LNG Fundamentals
Covers NGL extraction processes and LNG liquefaction cycles for gas monetisation. Connects gas processing to downstream value chain opportunities.
Lesson 2 • Gas Dehydration and Sweetening
Designs glycol dehydration and amine sweetening units to meet pipeline gas quality specifications. Addresses H2S and CO2 removal for safe gas transport.
Lesson 3 • Gas Gathering and Pipeline Hydraulics
Covers pipeline flow equations, pressure drop calculations, and network design for gas gathering. Enables field-level infrastructure planning and optimisation.
Lesson 4 • Gas Well Performance and Compression
Analyses gas well IPR, tubing performance, and compression requirements for field life extension. Integrates nodal analysis with compression system design.
Lesson 5 • Gas Reservoir Characterisation
Applies gas material balance, deliverability testing, and reserve classification to gas reservoirs. Builds on reservoir engineering principles for gas-specific applications.
Chapter 7HideHide detailsSee detailsReservoir Simulation and Modelling
Reservoir Simulation and Modelling
Lesson 1 • Fundamentals of Numerical Simulation
Introduces finite difference formulations, grid types, and simulator architecture for reservoir modelling. Establishes the mathematical framework underlying all simulation workflows.
Lesson 2 • Development Scenario Forecasting
Runs production forecasts for infill drilling, EOR, and depletion scenarios to support field development decisions. Quantifies uncertainty ranges for reserves reporting.
Lesson 3 • Initialisation and Fluid Contact Definition
Sets up equilibrium initialisation, fluid contacts, and PVT regions in the simulation model. Ensures the model correctly represents initial reservoir state before production.
Lesson 4 • History Matching Techniques
Applies manual and assisted history matching to calibrate model parameters against production data. Validates the model for reliable future performance forecasting.
Lesson 5 • Static Geological Model Building
Covers structural modelling, facies modelling, and petrophysical property population for simulation grids. Translates geological interpretation into quantitative reservoir models.
Chapter 8HideHide detailsSee detailsField Development Planning and Economics
Field Development Planning and Economics
Lesson 1 • Risk and Uncertainty Quantification
Applies Monte Carlo simulation and decision tree analysis to quantify project risk and value uncertainty. Enables probabilistic investment decisions under geological and market uncertainty.
Lesson 2 • Field Development Plan Preparation
Structures a full field development plan integrating subsurface, facilities, and economic components. Synthesises all prior course competencies into a coherent development strategy.
Lesson 3 • Asset Management and Portfolio Strategy
Applies portfolio optimisation and asset lifecycle management principles to upstream investment decisions. Prepares engineers for senior technical and commercial roles.
Lesson 4 • Reserves Classification and Reporting
Applies international reserves classification frameworks to categorise 1P, 2P, and 3P reserves. Ensures compliance with reporting standards used by operators and regulators.
Lesson 5 • Petroleum Economics Fundamentals
Calculates NPV, IRR, and payout using discounted cash flow models for oil and gas projects. Provides the financial evaluation tools needed for investment ranking.
Your valid completion certificate
This course is for you:
Early-career engineer: seeking a structured entry point into upstream petroleum roles.
Geology or geoscience graduate: wanting to add engineering depth to subsurface expertise.
Mechanical or chemical engineer: pivoting into the oil and gas sector professionally.
Mid-level technician: ready to move into an engineering decision-making capacity.
Energy sector professional: needing technical credibility across drilling and reservoir disciplines.
Career changer from renewables: building foundational knowledge of conventional hydrocarbon systems.
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