
Petroleum Engineer Course
Master every discipline a petroleum engineer needs — from subsurface geology and reservoir simulation to drilling, completions, and enhanced oil recovery. This comprehensive course covers the full upstream value chain with technical depth and practical application. Whether you're entering the industry or advancing your career, this is the technical foundation that gets you there.
What you will learn:
You will build a complete technical skill set across all core petroleum engineering disciplines. Starting with petroleum geology and fluid properties, you will progress through petrophysics, reservoir engineering, and material balance methods. You will learn to design drilling programs, select completion strategies, and optimize production using nodal analysis and artificial lift systems. The course also covers reservoir simulation, waterflood design, and EOR screening. Supplementary modules address petroleum economics, HSE management, digital oilfield tools, and energy transition frameworks. By the end, you will be equipped to contribute to field development planning and engineering decisions at a professional level.
How you study in practice Petroleum Engineer Course
How you practise Petroleum Engineer Course
For companies looking to train their team
With Dedika for Business, 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 • Units, Conversions, and Industry Standards
Establishes consistent unit systems and conversion practices used across all engineering calculations. Introduces standard reporting conventions and regulatory measurement concepts.
Lesson 2 • Petroleum Industry Overview
Covers upstream, midstream, and downstream segments and their interdependencies. Establishes industry context essential for all subsequent technical chapters.
Lesson 3 • Reservoir Fluid Properties
Quantifies pressure-volume-temperature behavior of reservoir fluids. These properties underpin material balance and production calculations in core chapters ahead.
Lesson 4 • Petroleum Geology Essentials
Introduces rock types, stratigraphy, and structural traps critical to locating hydrocarbons. Connects geologic principles to reservoir identification used in later chapters.
Lesson 5 • Origin and Classification of Hydrocarbons
Explains organic matter transformation into oil and gas over geologic time. Provides chemical and physical classification used throughout reservoir and production chapters.
Chapter 2HideHide detailsSee detailsPetrophysics and Formation Evaluation
Petrophysics and Formation Evaluation
Lesson 1 • Permeability and Flow Capacity
Covers Darcy's law and absolute, effective, and relative permeability concepts. Links flow capacity measurements to production potential assessed in later chapters.
Lesson 2 • Core Analysis and Calibration
Describes conventional and special core analysis workflows and their use in calibrating log data. Ensures log-derived properties are validated against direct measurements.
Lesson 3 • Well Logging Fundamentals
Introduces wireline and logging-while-drilling tools and their physical measurement principles. Provides the tool knowledge needed to interpret logs in the following section.
Lesson 4 • Rock Properties and Pore Systems
Defines porosity types, pore geometry, and their impact on fluid storage. Establishes rock property vocabulary used in log interpretation and reservoir modeling.
Lesson 5 • Log Interpretation and Pay Identification
Applies Archie's equation and crossplot methods to determine water saturation and net pay. Directly enables volumetric reserve estimation covered in the next chapter.
Chapter 3HideHide detailsSee detailsReservoir Engineering Principles
Reservoir Engineering Principles
Lesson 1 • Material Balance Equations
Derives and applies the generalized material balance equation to oil and gas reservoirs. Enables estimation of original fluids in place and aquifer influx from production data.
Lesson 2 • Volumetric Reserve Estimation
Combines petrophysical and reservoir data to estimate original oil and gas in place volumetrically. Introduces probabilistic methods and reserve classification frameworks.
Lesson 3 • Reservoir Drive Mechanisms
Identifies natural energy sources driving fluid production and their characteristic performance trends. Understanding drives is prerequisite to material balance and recovery factor analysis.
Lesson 4 • Decline Curve Analysis
Applies exponential, hyperbolic, and harmonic decline models to forecast production rates. Provides a practical, data-driven forecasting tool complementing simulation methods.
Lesson 5 • Fluid Flow in Porous Media
Applies Darcy's law to radial and linear flow regimes under steady, pseudo-steady, and transient conditions. Provides the flow equations underlying well performance and pressure analysis.
Chapter 4HideHide detailsSee detailsDrilling Engineering
Drilling Engineering
Lesson 1 • Wellbore Stability and Geomechanics
Applies in-situ stress analysis and rock strength criteria to prevent wellbore collapse and lost circulation. Provides geomechanical inputs for mud weight window design.
Lesson 2 • Drilling Fluids and Hydraulics
Explains drilling fluid functions, rheological properties, and hydraulic optimization for efficient cuttings transport. Directly impacts rate of penetration and wellbore stability covered next.
Lesson 3 • Well Planning and Casing Design
Covers pore pressure and fracture gradient prediction used to set casing seats and mud weights. Establishes the well architecture framework for all subsequent drilling operations.
Lesson 4 • Drill Bit Selection and ROP Optimization
Compares roller cone and PDC bit designs and their application to formation types. Links bit selection to weight-on-bit and RPM parameters for rate-of-penetration optimization.
Lesson 5 • Directional Drilling and Well Trajectory
Covers directional drilling tools, survey calculations, and trajectory design for deviated and horizontal wells. Enables students to plan well paths targeting specific reservoir intervals.
Chapter 5HideHide detailsSee detailsWell Completion and Stimulation
Well Completion and Stimulation
Lesson 1 • Hydraulic Fracturing Design
Covers fracture mechanics, fluid and proppant selection, and treatment schedule design for hydraulic fracturing. Provides the technical basis for stimulating both conventional and tight reservoirs.
Lesson 2 • Acid Stimulation Techniques
Describes matrix acidizing and acid fracturing workflows for carbonate and sandstone formations. Complements hydraulic fracturing as an alternative stimulation method for damage removal.
Lesson 3 • Completion Design Fundamentals
Compares open-hole, cased-hole, and sand-control completion types and their selection criteria. Establishes the completion architecture that all stimulation and production operations depend on.
Lesson 4 • Perforating and Near-Wellbore Damage
Explains perforation design parameters and their effect on skin and inflow performance. Connects near-wellbore damage removal to productivity improvement quantified in stimulation sections.
Lesson 5 • Unconventional Well Completions
Applies multistage fracturing and cluster spacing optimization to horizontal wells in tight formations. Extends conventional completion principles to shale and tight sand development.
Chapter 6HideHide detailsSee detailsProduction Engineering and Artificial Lift
Production Engineering and Artificial Lift
Lesson 1 • Artificial Lift System Selection
Compares ESP, rod pump, gas lift, and other lift methods using selection criteria based on well conditions. Provides a decision framework applied in the design sections that follow.
Lesson 2 • Production Optimization Techniques
Applies rate allocation, choke management, and surveillance data to maximize field production. Integrates inflow, lift, and surface system performance into a unified optimization workflow.
Lesson 3 • Flow Assurance and Production Chemistry
Identifies wax, asphaltene, scale, and hydrate risks and their mitigation strategies in production systems. Ensures production system integrity from reservoir to processing facility.
Lesson 4 • Inflow Performance and IPR Curves
Derives inflow performance relationships for oil and gas wells under various reservoir conditions. Provides the inflow component of nodal analysis used throughout this chapter.
Lesson 5 • Tubing Performance and Nodal Analysis
Models multiphase flow pressure drop in tubing and applies nodal analysis to find operating points. Enables system optimization by matching inflow and outflow curves.
Chapter 7HideHide detailsSee detailsReservoir Simulation and Modeling
Reservoir Simulation and Modeling
Lesson 1 • Static Geological Model Building
Covers structural modeling, facies modeling, and property population using geostatistical methods. Provides the static model that is upscaled and imported into the dynamic simulator.
Lesson 2 • Reservoir Simulation Fundamentals
Introduces finite difference formulation, grid types, and governing flow equations in reservoir simulators. Establishes the mathematical foundation for building and running simulation models.
Lesson 3 • Development Scenario Forecasting
Uses validated models to compare infill drilling, EOR, and pressure maintenance development options. Translates simulation results into production profiles and recovery factor comparisons.
Lesson 4 • History Matching Methodology
Applies systematic parameter adjustment to match simulated production to historical field data. Validates model predictive capability required for reliable development scenario forecasting.
Lesson 5 • Dynamic Model Initialization and Fluid Contact
Initializes the dynamic model with fluid contacts, capillary pressure, and equilibration regions. Ensures the model matches static volumetrics before history matching begins.
Chapter 8HideHide detailsSee detailsEnhanced Oil Recovery and Field Development
Enhanced Oil Recovery and Field Development
Lesson 1 • Waterflooding Design and Management
Covers pattern selection, injection rate design, and performance monitoring for waterflood projects. Waterflooding is the most widely applied EOR method and underpins all injection scheme design.
Lesson 2 • Chemical and Thermal EOR Methods
Describes polymer, surfactant, and alkaline flooding alongside steam and in-situ combustion for heavy oil. Provides advanced recovery options for reservoirs where conventional methods are insufficient.
Lesson 3 • Integrated Field Development Planning
Synthesizes reservoir, drilling, completion, and production data into a full-field development plan. Culminates the course by applying all prior engineering disciplines to a unified project framework.
Lesson 4 • Gas Injection and Miscible Flooding
Evaluates continuous gas injection, WAG, and miscible flood processes for improving displacement efficiency. Extends recovery beyond waterflooding in reservoirs with favorable fluid properties.
Lesson 5 • EOR Screening and Displacement Theory
Applies displacement efficiency concepts and screening criteria to select appropriate EOR methods. Provides the theoretical basis for evaluating waterflooding and tertiary recovery processes.
Your valid completion certificate
This course is for you:
Geology graduates: ready to pivot into petroleum engineering roles.
Junior petroleum engineers: seeking structured knowledge to close technical gaps.
Mechanical engineers: transitioning into upstream oil and gas operations.
Energy sector analysts: wanting subsurface and production fluency for better decisions.
Military veterans: leveraging technical discipline to enter the energy workforce.
International students: building credentials for global petroleum industry employment.
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