Introduction to Systems Engineering (Coursera)

Introduction to Systems Engineering (Coursera)

"Introduction to Systems Engineering" uses a structured yet flexible approach to provide a holistic, solid foundation to the successful development of complicated systems. The course takes you step by step through the system life cycle, from design to development, production and management. You will learn how the different components of a system interrelate, and how each contributes to a project’s goals and success.

Class Deals by MOOC List - Click here and see Coursera's Active Discounts, Deals, and Promo Codes.

The discipline’s terminology, which can so often confuse the newcomer, is presented in an easily digestible form. Weekly video lectures introduce and synthesise key concepts, which are then reinforced with quizzes and practical exercises to help you measure your learning.
This course welcomes anyone who wants to find out how complex systems can be developed and implemented successfully. It is relevant to anyone in project management, engineering, QA, logistic support, operations, management, maintenance and other work areas. No specific background is required, and we welcome learners with all levels of interest and experience.

Syllabus

WEEK 1
Course Welcome & Module 1 (Introduction to Systems and System Life Cycle)
Welcome to 'Introduction to Systems Engineering'! To help you in getting started with this course, we have a course introduction video that will provide you with an overview of the course syllabus.We then begin the course with this introductory module in which we address the nature of systems and the concept of a system life cycle. We identify what is meant when we say that something is a system and we narrow down the very broad definitions to focus on the human-made or modified systems that are our focus in systems engineering. We then look at the broad phases and activities that a system moves through during its life cycle, from early identification of the need for the system, exploration of options, functional design, physical design, detailed design and development, construction and production, utilization and support and then, finally, retirement.

WEEK 2
Systems Engineering and its Relevance and Benefits
In this module, we describe the discipline of systems engineering and outline its relevance and benefits. We introduce what we mean by the ‘systems engineering’ and provide a framework within which we can consider the major processes, activities, and artefacts throughout the remainder of the course. In doing so, it will have become evident to you that the systems engineering approach has a number of advantages, so we then examine in a little more detail the relevance and benefits of systems engineering.

WEEK 3
Needs and Requirements
Before we look at the various systems engineering activities in more detail in forthcoming modules, in this module we look at what we mean when we refer to the ‘needs’ and ‘requirements’ for a system. We examine the needs and requirements views developed by business management, business operations, and systems designers. We will also consider in this module how we might go about developing a set of requirements—we call that process ‘requirements engineering’.

WEEK 4
Requirements Elicitation and Elaboration
In this module, we explore requirements engineering and the processes by which requirements are elicited and defined formally through a process called elaboration (which involves derivation and decomposition of lower-level requirements from their parent requirements). We also look in this module at some simple requirements engineering tools and illustrate how they might be useful to you. Finally, we examine the notion of traceability, which ensures that we know where each requirement comes from, what requirements are related to it, and what requirements were derived from it. At the end of this module, you should be prepared to attempt the mid-course exam.

WEEK 5
Conceptual Design
In this module we examine Conceptual Design, during which we investigate how business needs and requirements and stakeholder needs and requirements are translated into a system-level understanding of the requirements of our system. This understanding will tell us what the system needs to do, how well it needs to perform, and what other systems it needs to interact with in order to meet the stakeholder and business needs and requirements. We then look at the concept of system level synthesis where we make some high-level design decisions before reviewing our work in preparation of the core design effort normally associated with preliminary and detailed design.

WEEK 6
Preliminary and Detailed Design
In this module we pick up from where we left off at the end of Conceptual Design and we start to make some more detailed design decisions. During preliminary design, we will look at identifying the various subsystems that will need to come together to form our system. What do these subsystems need to be able to do? How do they need to inter-relate? Can we source these subsystems off the shelf or do they need to be designed from the ground up? These are key questions of preliminary design. For the subsystems that need to be designed or modified, some level of detailed design will be required. We will look at detailed design process and talk about tools like prototyping and how these tools help to refine the detailed design.

WEEK 7
Construction, Production, and Utilisation
We now move onto the construction and production of the system based on the detailed design from the previous stage. During construction and production, we look at critical systems engineering activities such as configuration audits and system verification. The system then enters the utilisation phase where we explore how systems engineering may continue to be involved via modification and upgrade projects. We finish this section by looking briefly at some of the issues we face when trying to dispose of or retire systems that are no longer required.

WEEK 8
Systems Engineering Management
In this final module, we explore some of the key management issues that systems engineering must address in order to maintain balance and control across the systems engineering effort. We look specifically at issues such as verification and validation management, configuration management, technical risk management and the management of the technical review and audit program. We also explore some of the broad strategies that may be adopted when executing a systems engineering process. Whilst we have used what is generally referred to as a waterfall approach throughout the course to explain systems engineering, in this module we also briefly introduce alternatives such as incremental and evolutionary development. We conclude the module by emphasising the importance of planning throughout the systems engineering program and the development of a governing plan known as the systems engineering management plan or SEMP.

WEEK 9
Final Exam and Information About Further Study
Having finished the modules, you are now in a position to complete the final exam covering Modules 6 to 9.

Go to Class
MOOC List is learner-supported. When you buy through links on our site, we may earn an affiliate commission.

Related Courses

Introduction to Engineering Mechanics (Coursera) Coursera
Georgia Institute of Technology

Introduction to Engineering Mechanics (Coursera)

This course is an introduction to learning and applying the principles required to solve engineering mechanics problems. Concepts will be applied in this course from previous courses you have taken in basic math and physics. The course addresses the modeling and analysis of static equilibrium problems with an emphasis on real world engineering applications and problem solving.

Jun 1st 2026
5-12 Weeks
Ethics, Technology and Engineering (Coursera) Coursera
Eindhoven University of Technology

Ethics, Technology and Engineering (Coursera)

There is an increasing attention to ethics in engineering practice. Engineers are supposed not only to carry out their work competently and skilfully, but also to be aware of the broader ethical and social implications of engineering and to be able to reflect on these. According to the Engineering Criteria 2000 of the Accreditation Board for Engineering and Technology (ABET) in the US, engineers must have “an understanding of professional and ethical responsibility” and should "understand the impact of engineering solutions in a global and societal context.”

Jun 8th 2026
5-12 Weeks
Engineering Maintainable Android Apps (Coursera) Coursera
Vanderbilt University

Engineering Maintainable Android Apps (Coursera)

Engineering Maintainable Android Apps, which is a 4 week MOOC that shows by example various methods for engineering maintainable Android apps, including test-driven development methods and how to develop/run unit tests using JUnit and Robotium (or equivalent automated testing frameworks for Android), as well as how to successfully apply common Java/Android software patterns to improve the extensibility and clarity of Android apps.

Jun 8th 2026
4 Weeks
L'Art des Structures 2 : treillis, poutres, dalles et cadres (Coursera) Coursera
École Polytechnique Fédérale de Lausanne

L'Art des Structures 2 : treillis, poutres, dalles et cadres (Coursera)

Les structures en treillis, en poutre, en dalles et en cadre sont essentielles pour une grande partie des constructions modernes : immeubles pour l'habitation ou de bureaux, halles et usines, ponts, ou passerelles, voies de transport de l'énergie ou des télécommunications, stades et grandes toitures. Le cours L'Art des Structures 2 vous propose d'en découvrir le fonctionnement et les bases de leur dimensionnement.

Jun 8th 2026
5-12 Weeks
Control of Nonlinear Spacecraft Attitude Motion (Coursera) Coursera
University of Colorado Boulder

Control of Nonlinear Spacecraft Attitude Motion (Coursera)

This course trains you in the skills needed to program specific orientation and achieve precise aiming goals for spacecraft moving through three dimensional space. First, we cover stability definitions of nonlinear dynamical systems, covering the difference between local and global stability. We then analyze and apply Lyapunov's Direct Method to prove these stability properties, and develop a nonlinear 3-axis attitude pointing control law using Lyapunov theory. Finally, we look at alternate feedback control laws and closed loop dynamics.

Jun 8th 2026
4 Weeks
Materials Science: 10 Things Every Engineer Should Know (Coursera) Coursera
University of California, Davis

Materials Science: 10 Things Every Engineer Should Know (Coursera)

We explore “10 things” that range from the menu of materials available to engineers in their profession to the many mechanical and electrical properties of materials important to their use in various engineering fields. We also discuss the principles behind the manufacturing of those materials. By the end of the course, you will be able to: recognize the important aspects of the materials used in modern engineering applications; explain the underlying principle of materials science: “structure leads to properties,”; identify the role of thermally activated processes in many of these important “things” – as illustrated by the Arrhenius relationship; relate each of these topics to issues that have arisen (or potentially could arise) in your life and work.

Jun 8th 2026
5-12 Weeks
Self Awareness and the Effective Leader (Coursera) Coursera
Rice University

Self Awareness and the Effective Leader (Coursera)

Part of being an effective leader is learning how to play to your strengths and overcome characteristics that don't lend to good leadership practices. During the course, you will examine your own strengths and learn ways to use them in a leadership role. Learn to manage stress and solve problems creatively. Throughout the course, you will also build a tool kit of useful techniques that you can begin using right away in your engineering career.

Jun 8th 2026
5-12 Weeks
Resilience & Leadership: Tools, Methods, & Applications (Coursera) Coursera
University of Colorado Boulder

Resilience & Leadership: Tools, Methods, & Applications (Coursera)

Resilience & Leadership: Tools, Methods, & Applications is the second course of the ‘Resilience Engineering and Leadership in Crisis’ specialization. This course offers tools and methods for applying the concepts from the Course 1 (Resilience & Leadership: Concepts, Definitions, & Frameworks) to various applications and disaster scenarios. Systems thinking, crisis management lifecycle, and organizational strategy are presented to help cultivate and strengthen crisis leadership and communication skills. Learners will assess the resilience of a complex system and create a crisis management plan.

Jun 9th 2026
5-12 Weeks
Ferrous Technology II (Coursera) Coursera
Pohang University of Science and Technology - POSTECH

Ferrous Technology II (Coursera)

Steel, ever-evolving material, has been the most preeminent of all materials since it can provide wide range of properties that can meet ever-changing requirements. In this course, we explore both fundamental and technical issues related to steels, including iron and steelmaking, microstructure and phase transformation, and their properties and applications.

Jun 8th 2026
5-12 Weeks
English for Science, Technology, Engineering, and Mathematics (Coursera) Coursera
University of Pennsylvania

English for Science, Technology, Engineering, and Mathematics (Coursera)

Welcome to English for Science, Technology, Engineering, and Mathematics, a course created by the University of Pennsylvania, and funded by the U.S. Department of State Bureau of Educational and Cultural Affairs, Office of English Language Programs. This course is designed for non-native English speakers who are interested in improving their English skills in the sciences. In this course, you will explore some of the most innovative areas of scientific study, while expanding your vocabulary and the language skills needed to share scientific information within your community.

Jun 1st 2026
5-12 Weeks