
Biomedical Engineering Course
Master the full spectrum of biomedical engineering — from implant design and medical imaging to AI-driven diagnostics and clinical translation. This course equips you with the technical depth and regulatory knowledge to develop devices that meet real clinical needs. Whether you're advancing your career or breaking into the field, this is where engineering meets medicine at the highest level.
What you will learn:
This course covers core biomedical engineering disciplines: biomechanics, biomaterials, instrumentation, signal processing, and medical imaging. You will learn to design and verify devices using industry-standard design control and risk management. The curriculum includes physiological modeling, computational fluid dynamics, and finite element analysis for simulation. Supplementary modules add AI for image analysis, neuroengineering, tissue engineering, and genomic data analysis. You will also develop professional skills in technical writing, project management, and regulatory strategy. By the end, you will be ready to lead multidisciplinary device development from concept to clinical adoption.
How you study in practice Biomedical Engineering Course
How you practice Biomedical Engineering 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 • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Biomedical Engineering
Foundations of Biomedical Engineering
Lesson 1 • Engineering Fundamentals Review
Reviews mechanics, thermodynamics, and electrical circuit basics as applied to biological contexts. Ensures all students share a common quantitative foundation.
Lesson 2 • Regulatory and Ethical Framework
Introduces device classification, safety standards, and ethical obligations in biomedical product development. Establishes compliance thinking from the outset.
Lesson 3 • History and Scope of the Field
Traces the evolution from early prosthetics to modern biosystems engineering. Provides context for understanding how clinical needs drive engineering innovation.
Lesson 4 • Biological Systems for Engineers
Covers cell biology, tissue organization, and organ system physiology at the level needed for device and system design. Bridges life science vocabulary with engineering analysis.
Chapter 2HideHide detailsSee detailsBiomechanics and Biomaterials
Biomechanics and Biomaterials
Lesson 1 • Biomaterial Classes and Properties
Surveys metals, ceramics, polymers, and composites used in medical devices. Evaluates mechanical, chemical, and biological property trade-offs for each class.
Lesson 2 • Biocompatibility and Host Response
Examines inflammatory response, protein adsorption, and long-term tissue integration. Guides material selection to minimize adverse biological reactions.
Lesson 3 • Mechanics of Biological Tissues
Analyzes stress, strain, and viscoelastic behavior in bone, cartilage, and soft tissue. Connects tissue mechanics to failure modes and device loading requirements.
Lesson 4 • Implant Design and Failure Analysis
Applies fatigue, fracture mechanics, and wear analysis to orthopedic and cardiovascular implants. Students perform failure mode identification and design iteration.
Lesson 5 • Surface Modification Techniques
Covers coating, functionalization, and surface texturing methods to improve implant performance. Links surface chemistry to biological outcomes.
Chapter 3HideHide detailsSee detailsBiomedical Instrumentation and Sensors
Biomedical Instrumentation and Sensors
Lesson 1 • Transducer and Sensor Technologies
Surveys resistive, capacitive, piezoelectric, optical, and electrochemical transducers. Matches transducer physics to specific physiological measurement needs.
Lesson 2 • Data Acquisition and Digitization
Covers sampling theory, analog-to-digital conversion, and real-time data streaming. Ensures students can configure acquisition systems without aliasing or quantization error.
Lesson 3 • Wearable and Implantable Sensor Systems
Addresses miniaturization, power management, and wireless telemetry for body-worn and implanted sensors. Connects design constraints to clinical deployment scenarios.
Lesson 4 • Analog Front-End Circuit Design
Designs instrumentation amplifiers, filters, and isolation circuits for biopotential acquisition. Addresses common-mode rejection and patient safety isolation.
Lesson 5 • Physiological Signal Characteristics
Characterizes amplitude, frequency, and noise properties of bioelectric, biomechanical, and biochemical signals. Establishes specifications for sensor and amplifier design.
Chapter 4HideHide detailsSee detailsBiomedical Signal Processing
Biomedical Signal Processing
Lesson 1 • Wavelet and Multiresolution Analysis
Applies wavelet transforms to non-stationary biomedical signals for time-frequency localization. Extends frequency-domain skills to transient and multi-scale phenomena.
Lesson 2 • Time-Domain Signal Analysis
Applies statistical descriptors, correlation, and event detection to raw physiological waveforms. Provides foundational tools used in all subsequent processing methods.
Lesson 3 • Frequency-Domain Analysis
Uses Fourier transforms and power spectral density to characterize signal frequency content. Enables filter design and rhythm analysis in cardiac and neural signals.
Lesson 4 • ECG, EEG, and EMG Processing Pipelines
Integrates time, frequency, and wavelet methods into complete clinical signal processing workflows. Students implement and validate end-to-end pipelines for three major modalities.
Lesson 5 • Digital Filter Design
Designs FIR and IIR filters for noise suppression and band isolation in biomedical signals. Balances phase linearity, computational cost, and clinical accuracy requirements.
Chapter 5HideHide detailsSee detailsMedical Imaging Systems
Medical Imaging Systems
Lesson 1 • Ultrasound Imaging
Analyzes acoustic wave propagation, transducer arrays, and beamforming for diagnostic ultrasound. Addresses Doppler methods for blood flow quantification.
Lesson 2 • Magnetic Resonance Imaging
Covers nuclear spin physics, pulse sequences, and k-space data acquisition. Enables students to match MRI sequences to tissue contrast requirements.
Lesson 3 • X-Ray and Computed Tomography
Explains X-ray generation, attenuation, and CT reconstruction algorithms. Connects radiation dose management to image quality optimization.
Lesson 4 • Nuclear and Optical Imaging
Introduces PET, SPECT, and optical coherence tomography as functional and molecular imaging tools. Compares sensitivity, resolution, and clinical application domains.
Lesson 5 • Image Quality and Quantitative Metrics
Defines spatial resolution, contrast-to-noise ratio, and modulation transfer function across modalities. Students apply metrics to compare and optimize imaging system performance.
Chapter 6HideHide detailsSee detailsPhysiological Modeling and Simulation
Physiological Modeling and Simulation
Lesson 1 • Respiratory and Musculoskeletal Modeling
Applies compartmental and mechanical models to lung mechanics and joint biomechanics. Extends modeling skills to ventilator design and orthopedic device evaluation.
Lesson 2 • Computational Fluid Dynamics in Biomedical Systems
Simulates blood flow in vessels and medical devices using CFD methods. Connects hemodynamic stress predictions to thrombosis risk and device optimization.
Lesson 3 • Compartmental Modeling Fundamentals
Formulates ordinary differential equation models for drug distribution and physiological transport. Provides the mathematical toolkit for all subsequent system-level models.
Lesson 4 • Cardiovascular System Modeling
Models cardiac mechanics, vascular compliance, and hemodynamics using lumped-parameter circuits. Supports design and virtual testing of cardiac assist devices.
Lesson 5 • Finite Element Analysis in Biomechanics
Applies FEA to stress distribution in bone, soft tissue, and implants under physiological loading. Students mesh, solve, and interpret FEA results for device design decisions.
Chapter 7HideHide detailsSee detailsMedical Device Design and Development
Medical Device Design and Development
Lesson 1 • Design Verification and Validation
Distinguishes verification from validation and applies statistical sampling plans to design testing. Prepares students to compile design history files for regulatory submission.
Lesson 2 • Risk Management Throughout Design
Implements hazard identification, risk estimation, and risk control using FMEA and fault tree analysis. Integrates risk management as a continuous design activity.
Lesson 3 • Concept Generation and Selection
Applies ideation, morphological analysis, and Pugh matrix methods to generate and select device concepts. Builds systematic decision-making skills for early-stage design.
Lesson 4 • Prototyping and Bench Testing
Covers rapid prototyping, 3D printing, and bench-top test method development for device verification. Students design test protocols linked to design input specifications.
Lesson 5 • User Needs and Design Requirements
Translates clinical user needs into measurable design inputs using structured methods. Establishes the requirements baseline that governs all subsequent design decisions.
Chapter 8HideHide detailsSee detailsClinical Translation and Healthcare Systems
Clinical Translation and Healthcare Systems
Lesson 1 • Regulatory Pathways for Medical Devices
Compares premarket notification, premarket approval, and conformity assessment routes across major markets. Students map device classification to the appropriate submission pathway.
Lesson 2 • Healthcare System Integration
Examines hospital procurement, interoperability standards, and clinical workflow integration for new devices. Prepares engineers to collaborate with clinical and administrative stakeholders.
Lesson 3 • Clinical Trial Design for Devices
Applies randomized controlled trial and single-arm study designs to medical device evaluation. Addresses endpoint selection, sample size, and adaptive trial methods.
Lesson 4 • Health Technology Assessment
Evaluates clinical effectiveness, cost-effectiveness, and budget impact of new medical technologies. Connects engineering outcomes to payer and health system decision-making.
Lesson 5 • Post-Market Surveillance and Vigilance
Designs complaint handling, adverse event reporting, and post-market clinical follow-up systems. Ensures students understand lifecycle obligations beyond initial market clearance.
Your valid completion certificate
This course is for you:
Mechanical engineer: seeking to apply structural skills to implant and device design.
Electrical engineer: wanting to move into biosensor and instrumentation development.
Pre-med or life science graduate: looking to add quantitative engineering competency.
Clinical professional: aiming to contribute technically to medical device innovation teams.
Career changer: transitioning from aerospace, automotive, or materials engineering into healthcare.
Graduate student: building a rigorous foundation before entering a biomedical research program.
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