Students of systems engineering learn how to use engineering principles to assess a given industry, company, or process, and create models that improve functionality. They engage in research to develop innovative methods of tackling problems and improving operations. At its core, systems engineering is a logical way of thinking. And degree programs in the field teach students how to think logically and apply that skill in the world of work.

", "display_order": 1, "created_at": "2019-08-29T17:56:40.751000-07:00", "updated_at": "2021-12-13T12:19:29.739957-08:00"}, {"degree_id": 458, "page": 1, "title": "Program Options", "summary_markdown": "**It is important to select a program that is accredited by the Accreditation Board for Engineering and Technology (ABET).** \r\n\r\n**Bachelor\u2019s Degree in Systems Engineering \u2013 Four Year Duration** \r\nThe bachelor\u2019s program in systems engineering is interdisciplinary, drawing from engineering, computer science, operations research, the natural and social sciences, and mathematics and statistics. Students learn how these disciplines fit into the development of complex, large-scale systems. Extensive design, research and development, and testing projects provide hands-on experience in applying various systems engineering methods and tools. \r\n\r\nHere is a snapshot of the bachelor\u2019s level core curriculum: \r\n\r\n- Understanding Systems Engineering \u2013 introduction to key systems engineering concepts, including the process of translating system-level requirements to component-level requirements; examples of different kinds of systems are presented with emphasis on objectives, major components, how systems work, and major design issues \r\n- Systems Design \u2013 functional modeling for design; formulating and analyzing physical design alternatives; introduction to methods and software tools for systems engineering design \r\n- Dynamic Systems \u2013 the modeling of dynamic systems, which by their nature are constantly moving or must change states to be useful; examples of these types of systems include vehicles, process industries, drilling, entertainment equipment (radios, televisions, etc.), and computers and printers \r\n- Systems Modeling Laboratory \u2013 formulation of mathematical models from system descriptions, including biological, financial, and mechanical systems \r\n- Systems Methods \u2013 introduction to various quantitative techniques that are used to model and evaluate design options; topics include analysis methods of system engineering design and management, decision analysis, models for engineering economics and evaluations, probability and statistical methods for data analysis, management control techniques, safety, reliability, and maintainability analysis, risk and uncertainty management, and life-cycle cost analysis \r\n- Systems Engineering Management \u2013 introduction to the fundament concepts in systems engineering management; engineering economics, planning, staffing, monitoring, and control processes related to the design, development, and production of a system to meet a specific need \r\n- Applied Systems Engineering \u2013 designing and building projects involving real world complex systems; building physical models that follow the steps of the life cycle process: statement of need, design, requirements, architecture implementation, testing, verification, and validation; students will learn about real world systems such as internet communications, navigation, robotics, creating a GUI (a graphical user interface, a system of interactive visual components that allows users to interact with electronic devices through graphical icons), and transmitting and receiving data from sensors \r\n- Human Factors Engineering \u2013 the \u2018human\u2019 component of the system, focusing on human performance characteristics and limitations; improving system usability and safety by taking a user centered design approach; topics include perception, cognition, memory, and decision making \r\n- Decision and Risk Analysis \u2013 analytic techniques for rational decision making that address uncertainty, conflicting objectives, and risk attitudes; modeling uncertainty", "content_markdown": "In addition to completing core courses like those described above, students select a particular industry in which to focus their systems engineering research and project work. Here are some possible technical emphasis areas: \r\n\r\n- Air Transportation System Engineering \u2013 system engineering in a national air transportation system; analyzing and designing complex network transportation systems, airports, airspace, airline schedules, and traffic flow \r\n- Bioengineering and Healthcare \u2013 bioinstrumentation, biomaterials, biomechanics, and systems biology; design of artificial organs and prosthetics, development of biomaterials for drug delivery, use of mathematical models to optimize healthcare systems, machine learning to improve microscopy and medical imaging \r\n- Computer Network Systems \u2013 planning, designing, and implementing computer networks \r\n- Control Systems \u2013 \u2018systems of systems;\u2019 analyzing, designing, and optimizing complex systems which consist of integrated coordination of mechanical, electrical, chemical, and other systems \r\n- Cyber Security Engineering \u2013 critical infrastructure protection, power systems and smart grid security, transportation systems design, human factors and cyber security engineering, intrusion detection \r\n- Environmental Engineering \u2013 application of systems analysis tools to improve the understanding and resolution of environmental engineering problems related to air, soil, water quality, and pollution \r\n- Financial Engineering \u2013 using mathematical finance, numerical methods, and computer simulations to make trading, hedging, and investment decisions \r\n- Mechanical Engineering \u2013 mechanics of materials, design of mechanical elements (fasteners, bearings, gearing, and shafts), design of thermal systems \r\n- Software-Intensive Systems \u2013 the software component of the systems engineering life cycle; the integration of hardware, software, and firmware, and the management of these complex computer systems over their life cycle\r\n\r\n**Master\u2019s Degree in Systems Engineering \u2013 Two Year Duration** \r\nGenerally, to be admitted to a systems engineering master\u2019s program, students must have a working background in engineering mathematics and computer systems. Below are examples of courses which may be compulsory at this level. A final project or thesis is required. \r\n\r\n- Systems Engineering Principles \r\n- Systems Definition and Cost Modeling \r\n- System Engineering Design \r\n- Systems Engineering Management \r\n- System Methodology and Modeling \r\n- Evidence-Based Systems Engineering \r\n\r\nMaster\u2019s candidates are often permitted to create their own emphasis area or select a concentration offered by their school. Possible concentrations may include those listed above, in the last paragraph of the bachelor\u2019s degree section. Here are a few more: \r\n\r\n- Command, Control, Communications, Computing, and Intelligence \u2013 systems supporting military operations and missions, such as sensors, communications systems, and information processing and decision support systems \r\n- Energy Systems \u2013 innovative solutions to meet the world\u2019s expanding energy needs; incorporating physical principles of thermal fluid energy transfer into system models; applying systems expertise to work with traditional power generation facilities, renewable energy integration, smart grids, mechanical and electrical energy storage systems, and utilization of energy in building and transportation systems \r\n- Systems Management \u2013 tracking and controlling system development through the major phases of the system life cycle, identifying and resolving problems to minimize their effect on cost, schedule, or performance \r\n\r\n**Doctoral Degree in Systems Engineering \u2013 Three to Four Year Duration** \r\nDoctoral programs in systems engineering are designed in one of two ways. The first emphasizes the comprehensive systems approach for designing and managing large-scale engineering systems throughout the life cycle. Coursework for this focus involves elements of systems engineering, methods and standards, architecting, computer tools that support systems engineering, trends and directions, and the integrative nature of systems engineering. \r\n\r\nThe second program model focuses on producing original research in the systems engineering field, from applied business systems engineering, analysis, and development to critical infrastructure systems and risk assessment and management. \r\n\r\nRegardless of the course of study they choose, doctoral candidates must complete and defend a dissertation.", "content_html": "

In addition to completing core courses like those described above, students select a particular industry in which to focus their systems engineering research and project work. Here are some possible technical emphasis areas:

\n\n

Master\u2019s Degree in Systems Engineering \u2013 Two Year Duration
\nGenerally, to be admitted to a systems engineering master\u2019s program, students must have a working background in engineering mathematics and computer systems. Below are examples of courses which may be compulsory at this level. A final project or thesis is required.

\n\n

Master\u2019s candidates are often permitted to create their own emphasis area or select a concentration offered by their school. Possible concentrations may include those listed above, in the last paragraph of the bachelor\u2019s degree section. Here are a few more:

\n\n

Doctoral Degree in Systems Engineering \u2013 Three to Four Year Duration
\nDoctoral programs in systems engineering are designed in one of two ways. The first emphasizes the comprehensive systems approach for designing and managing large-scale engineering systems throughout the life cycle. Coursework for this focus involves elements of systems engineering, methods and standards, architecting, computer tools that support systems engineering, trends and directions, and the integrative nature of systems engineering.

\n

The second program model focuses on producing original research in the systems engineering field, from applied business systems engineering, analysis, and development to critical infrastructure systems and risk assessment and management.

\n

Regardless of the course of study they choose, doctoral candidates must complete and defend a dissertation.

", "display_order": 2, "created_at": "2019-08-29T17:56:40.753083-07:00", "updated_at": "2021-12-13T12:09:22.817604-08:00"}, {"degree_id": 458, "page": 1, "title": "Degrees Similar to Systems Engineering", "summary_markdown": "**[Aerospace Engineering](/degrees/aerospace-engineering-degree/)** \r\nAerospace engineering degree programs teach the analytical, computational, and engineering and design skills needed to work in the aerospace industry. Students learn how to apply this knowledge to the manufacturing, testing, and monitoring of civil or commercial aircraft, military aircraft, missiles, rockets, spacecraft, lunar vehicles, and space stations. \r\n\r\n**[Civil Engineering](/degrees/civil-engineering-degree/)** \r\nThis degree field is focused on the processes of design and planning of civil infrastructure like roads, tunnels, bridges, dams, railroads, and airports. In their work, civil engineers are concerned with such things as how much weight a structure can support and the environmental issues presented by construction. The emphasis of civil engineering degree programs is math, statistics, engineering systems and mechanics, building codes, and statistical analysis. \r\n\r\n**[Computer Hardware Engineering](/degrees/computer-hardware-engineering-degree/)** \r\nComputer hardware engineering students study mathematics, physics and computer science. They apply knowledge in these areas to design and develop computer hardware. \r\n\r\n**[Computer Science](/degrees/computer-science-degree/)** \r\nThe field of computer science is focused on computer systems and how humans interact with them. Courses cover mathematics for computer science, artificial intelligence, data structures and algorithms, and introduction to program design. \r\n\r\n**[Computer Software Engineering](/degrees/computer-software-engineering-degree/)** \r\nDegree programs in computer software engineering teach students how to apply engineering principles to software development. Students learn how to design, build, test, implement, and maintain computer operating systems, as well as applications that allow end users to accomplish tasks on their computers, smartphones, and other electronic devices. Most programs begin with core engineering classes like mathematics, chemistry, and physics. \r\n\r\n**[Construction Engineering](/degrees/construction-engineering-degree/)** \r\nConstruction engineering is closely aligned with civil engineering. But it is different. Civil engineers typically focus on a construction project\u2019s design, analysis, and planning. Construction engineers often participate in this process, but their focus is onsite management, the *execution* of the project. They coordinate, organize, and manage the day-to-day construction process, ensuring compliance with designs and plans. \r\n\r\nStudents of construction engineering, therefore, learn how to create construction budgets, assemble necessary equipment and materials, build and supervise a team of construction and engineering professionals, oversee progress and safety of the building process, keep up-to-date logs, and communicate with contractors, clients, and construction company leadership.", "content_markdown": "**[Electrical Engineering](/degrees/electrical-engineering-degree/)** \r\nStudents of electrical engineering learn how to use physics, electronics, and electromagnetism to design devices that are powered by or produce electricity. Most degree programs in the field start with foundational classes in calculus, physics, and chemistry. \r\n\r\n**[Industrial Engineering](/degrees/industrial-engineering-degree/)** \r\nIndustrial engineering majors learn how to improve the way that industries and organizations, such as hospitals and factories, operate. They draw on their knowledge in math, science, business, and psychology to consider factors like materials, equipment, and people. \r\n\r\n**[Manufacturing Engineering](/degrees/manufacturing-engineering-degree/)** \r\nDegree programs in manufacturing engineering teach the skills required to design, implement, monitor, and improve manufacturing processes to increase productivity. \r\n\r\n**[Mechanical Engineering](/degrees/mechanical-engineering-degree/)** \r\nStudents of mechanical engineering learn how to research, design, develop, and test mechanical and thermal devices, including tools, sensors, engines, and machines. These devices serve many industries, including the aerospace, medical, energy, and manufacturing sectors. In addition to coursework in engineering and design, degree programs in the field include classes in mathematics, life sciences, and physical sciences. \r\n\r\n**[Operations Research](/degrees/operations-research-degree/)** \r\nWhile operations management is concerned with efficiently creating and delivering products and services, operations research is focused on analyzing systems to improve them and solve problems. \r\n\r\n**[Robotics Engineering](/degrees/robotics-engineering-degree/)** \r\nRobotics Engineering is focused on designing robots and robotic systems than can perform duties that humans are either unable or prefer not to perform.", "content_html": "

Electrical Engineering
\nStudents of electrical engineering learn how to use physics, electronics, and electromagnetism to design devices that are powered by or produce electricity. Most degree programs in the field start with foundational classes in calculus, physics, and chemistry.

\n

Industrial Engineering
\nIndustrial engineering majors learn how to improve the way that industries and organizations, such as hospitals and factories, operate. They draw on their knowledge in math, science, business, and psychology to consider factors like materials, equipment, and people.

\n

Manufacturing Engineering
\nDegree programs in manufacturing engineering teach the skills required to design, implement, monitor, and improve manufacturing processes to increase productivity.

\n

Mechanical Engineering
\nStudents of mechanical engineering learn how to research, design, develop, and test mechanical and thermal devices, including tools, sensors, engines, and machines. These devices serve many industries, including the aerospace, medical, energy, and manufacturing sectors. In addition to coursework in engineering and design, degree programs in the field include classes in mathematics, life sciences, and physical sciences.

\n

Operations Research
\nWhile operations management is concerned with efficiently creating and delivering products and services, operations research is focused on analyzing systems to improve them and solve problems.

\n

Robotics Engineering
\nRobotics Engineering is focused on designing robots and robotic systems than can perform duties that humans are either unable or prefer not to perform.

", "display_order": 3, "created_at": "2019-08-29T17:56:40.755303-07:00", "updated_at": "2021-12-13T12:11:13.223796-08:00"}, {"degree_id": 458, "page": 1, "title": "Skills You’ll Learn", "summary_markdown": "Systems engineering students learn how to combine technical knowledge with business acumen. Upon completing their studies, therefore, they have developed several transferable skills: \r\n\r\n- Cost control \r\n- Data analysis \r\n- Detailed thinking / creative problem-solving \r\n- Facility design \r\n- Math and quantitative skills \r\n- Organizational management \r\n- Passion for improving methods and systems \r\n- Patience \r\n- Quality control \r\n- Research \r\n- Understanding of human factors \r\n- Understanding of processes \r\n- Willingness to learn", "content_markdown": "", "content_html": "", "display_order": 4, "created_at": "2019-08-29T17:56:40.757394-07:00", "updated_at": "2021-12-13T12:08:09.759168-08:00"}, {"degree_id": 458, "page": 1, "title": "What Can You Do with a Systems Engineering Degree?", "summary_markdown": "Products and systems in every industry are becoming increasingly complex as a part of larger systems of systems. This trend of smarter, connected systems translates into a growing systems engineering job market. The list of employment sectors below, though not exhaustive, illustrates the wide and widening employment options for systems engineers. \r\n\r\n- Aerospace / airlines \r\n- Architectural and engineering services \r\n- Automotive \r\n- Banks and credit unions \r\n- Biotech and pharmaceuticals \r\n- Colleges and universities \r\n- Computer hardware and software \r\n- Construction \r\n- Cyber security \r\n- Electrical and electronic manufacturing \r\n- Energy /oil and gas exploration and production \r\n- Environment \r\n- Financial analytics and research \r\n- Financial transaction processing (credit card companies) \r\n- Food and beverage manufacturing \r\n- Government / federal agencies / military / defense and intelligence \r\n- Healthcare products manufacturing \r\n- Healthcare services and hospitals", "content_markdown": "- Hospitality companies / hotel chains / cruise lines \r\n- Insurance carriers \r\n- Interactive entertainment / gaming companies \r\n- Internet / e-commerce and social media giants \r\n- Investment banking and asset management \r\n- IT services / enterprise software and network solutions \r\n- Large retailers / superstores \r\n- Logistics and supply chain \r\n- Motion picture production and distribution \r\n- Publishing \r\n- Research and development \r\n- Staffing and outsourcing \r\n- Stock exchanges \r\n- Telecommunications manufacturing \r\n- Telecommunications services / cable, internet, and telephone providers \r\n- Urban planning", "content_html": "", "display_order": 5, "created_at": "2019-08-29T17:56:40.759524-07:00", "updated_at": "2021-12-13T12:17:24.234488-08:00"}], "degree_specializations": []}">

什么是系统工程学位?

美国电网。国际经济。现代能源、交通和电信基础设施。飞行控制。人类的大脑。传染病。气候。城市。国际空间站。这些都是一个非常复杂的系统的一个例子,一个组件的组合一起工作来执行一个功能。 The components, or parts, can include people, hardware, software, facilities, policies, and anything else needed to produce system-level results.

系统工程师在其生命周期内设计、集成和管理复杂的系统。他们的工作是跨学科的,重叠的技术和以人为本的学科,如工业工程、机械工程、制造工程、计算机工程、电气工程、航空航天工程、土木工程、组织研究和项目管理。

系统工程专业的学生学习如何使用工程原理来评估给定的行业、公司或流程,并创建改进功能的模型。他们从事研究,以开发解决问题和改善运营的创新方法。系统工程的核心是一种逻辑思维方式。该领域的学位课程教学生如何进行逻辑思考,并将这种技能应用到工作中。

程序选项

选择一个由工程技术认证委员会(ABET)认可的课程是很重要的。

系统工程学士学位-四年
系统工程学士课程是跨学科的,包括工程学、计算机科学、运筹学、自然科学和社会科学,以及数学和统计学。学生将学习这些学科如何适应复杂、大规模系统的发展。广泛的设计、研究和开发以及测试项目提供了应用各种系统工程方法和工具的实践经验。

以下是本科阶段的核心课程简介:

  • 了解系统工程——介绍关键的系统工程概念,包括将系统级需求转换为组件级需求的过程;不同类型的系统的例子,强调目标,主要组件,系统如何工作,和主要的设计问题
  • 系统设计——用于设计的功能建模;制定和分析物理设计方案;介绍系统工程设计的方法和软件工具
  • 动态系统-动态系统的建模,其本质是不断移动或必须改变状态才有用;这类系统的例子包括车辆、加工工业、钻井、娱乐设备(收音机、电视等)以及计算机和打印机
  • 系统建模实验室-从系统描述中制定数学模型,包括生物、金融和机械系统
  • 系统方法-介绍用于建模和评估设计选项的各种定量技术;课题包括系统工程设计和管理的分析方法、决策分析、工程经济学和评估模型、数据分析的概率和统计方法、管理控制技术、安全性、可靠性和可维护性分析、风险和不确定性管理以及生命周期成本分析
  • 系统工程管理-介绍系统工程管理的基本概念;与系统的设计、开发和生产相关的工程经济学、计划、人员配备、监控和控制过程,以满足特定的需求
  • 应用系统工程-设计和建造涉及现实世界复杂系统的项目;构建遵循生命周期过程步骤的物理模型:需求声明、设计、需求、架构实现、测试、验证和验证;学生将学习真实世界的系统,如互联网通信、导航、机器人、创建GUI(图形用户界面,交互式视觉组件系统,允许用户通过图形图标与电子设备交互),以及从传感器传输和接收数据
  • 人因工程-系统的“人”组成部分,专注于人的表现特征和局限性;采用以用户为中心的设计方法,提高系统的可用性和安全性;主题包括知觉、认知、记忆和决策
  • 决策和风险分析-用于解决不确定性、相互冲突的目标和风险态度的理性决策的分析技术;建模不确定性

除了完成如上所述的核心课程外,学生还可以选择一个特定的行业来专注于他们的系统工程研究和项目工作。以下是一些可能的技术重点领域:

  • 航空运输系统工程—国家航空运输系统的系统工程;分析和设计复杂的网络运输系统,机场,空域,航空公司时刻表和交通流量
  • 生物工程和医疗保健-生物仪器,生物材料,生物力学和系统生物学;人造器官和假肢的设计,药物输送生物材料的开发,使用数学模型优化医疗保健系统,机器学习改善显微镜和医学成像
  • 计算机网络系统-规划、设计和实现计算机网络
  • 控制系统——“系统的系统”;分析、设计和优化由机械、电气、化学和其他系统的综合协调组成的复杂系统
  • 网络安全工程-关键基础设施保护,电力系统和智能电网安全,交通系统设计,人为因素和网络安全工程,入侵检测
  • 环境工程-系统分析工具的应用,以提高有关空气,土壤,水质和污染的环境工程问题的理解和解决方案
  • 金融工程-使用数学金融,数值方法和计算机模拟来进行交易,对冲和投资决策
  • 机械工程-材料力学,机械元件设计(紧固件,轴承,齿轮传动和轴),热系统设计
  • 软件密集型系统-系统工程生命周期的软件组件;硬件、软件和固件的集成,以及这些复杂计算机系统在其生命周期内的管理

系统工程硕士学位-两年制
一般来说,要进入系统工程硕士课程,学生必须有工程数学和计算机系统的工作背景。以下是该级别的必修课示例。期末项目或论文是必需的。

  • 系统工程原理
  • 系统定义和成本建模
  • 系统工程设计
  • 系统工程管理
  • 系统方法论与建模
  • 循证系统工程

硕士候选人通常被允许创建自己的重点领域或选择他们的学校提供的集中。可能的专业可能包括上述学士学位部分最后一段所列的专业。下面是更多的例子:

  • 指挥、控制、通信、计算和情报——支持军事行动和任务的系统,如传感器、通信系统、信息处理和决策支持系统
  • 能源系统——创新解决方案,满足全球不断增长的能源需求;将热流体能量传递的物理原理纳入系统模型;应用系统专业知识与传统发电设施、可再生能源集成、智能电网、机电储能系统以及建筑和交通系统中的能源利用合作
  • 系统管理——通过系统生命周期的主要阶段跟踪和控制系统开发,识别和解决问题,使其对成本、进度或性能的影响最小化

系统工程博士学位——三到四年
系统工程博士课程的设计有两种方式。第一种强调在整个生命周期中设计和管理大型工程系统的综合系统方法。课程涉及系统工程的要素,方法和标准,架构,支持系统工程的计算机工具,趋势和方向,以及系统工程的综合性质。

第二个项目模型侧重于在系统工程领域产生原创性研究,从应用业务系统工程、分析和开发到关键基础设施系统和风险评估和管理。

无论他们选择的课程是什么,博士生都必须完成并答辩一篇论文。

与系统工程类似的学位

航空航天工程
航空航天工程学位课程教授在航空航天工业工作所需的分析、计算、工程和设计技能。学生学习如何将这些知识应用于民用或商用飞机、军用飞机、导弹、火箭、宇宙飞船、月球飞行器和空间站的制造、测试和监控。

土木工程
该学位领域主要研究道路、隧道、桥梁、大坝、铁路和机场等民用基础设施的设计和规划过程。在他们的工作中,土木工程师关心的事情,如结构可以承受多少重量,以及建筑所带来的环境问题。土木工程学位课程的重点是数学、统计学、工程系统和力学、建筑规范和统计分析。

计算机硬件工程
计算机硬件工程专业的学生学习数学、物理和计算机科学。他们应用这些领域的知识来设计和开发计算机硬件。

计算机科学
计算机科学领域的重点是计算机系统以及人类如何与它们交互。课程涵盖计算机科学、人工智能、数据结构和算法的数学,以及程序设计概论。

计算机软件工程
计算机软件工程学位课程教授学生如何将工程原理应用于软件开发。学生学习如何设计、构建、测试、实现和维护计算机操作系统,以及允许最终用户在其计算机、智能手机和其他电子设备上完成任务的应用程序。大多数课程都是从数学、化学和物理等核心工程课程开始的。

建筑工程
建筑工程与土木工程密切相关。但这是不同的。土木工程师通常专注于建筑项目的设计、分析和规划。建筑工程师经常参与这个过程,但他们的重点是现场管理执行这个项目。他们协调、组织和管理日常的施工过程,确保符合设计和计划。

因此,建筑工程专业的学生学习如何创建建筑预算,组装必要的设备和材料,建立和监督一个建筑和工程专业团队,监督建筑过程的进度和安全,保持最新的日志,并与承包商,客户和建筑公司领导层沟通。

电气工程
电气工程专业的学生学习如何使用物理学、电子学和电磁学来设计由电力驱动或产生电力的设备。该领域的大多数学位课程都是从微积分、物理和化学等基础课程开始的。

工业工程
工业工程专业学习如何改善医院和工厂等行业和组织的运作方式。他们利用自己在数学、科学、商业和心理学方面的知识来考虑材料、设备和人等因素。

制造工程
制造工程学位课程教授设计、实施、监控和改进制造过程以提高生产率所需的技能。

机械工程
机械工程专业的学生学习如何研究、设计、开发和测试机械和热设备,包括工具、传感器、发动机和机器。这些设备服务于许多行业,包括航空航天、医疗、能源和制造部门。除了工程和设计课程外,该领域的学位课程还包括数学、生命科学和物理科学。

运筹学
运营管理关注的是有效地创建和交付产品和服务,而运筹学则专注于分析系统以改进它们并解决问题。

机器人技术工程学
机器人工程专注于设计机器人和机器人系统,这些机器人可以执行人类不能或不愿意执行的任务。

你将学会的技能

系统工程专业的学生学习如何将技术知识与商业头脑结合起来。因此,在完成学业后,他们已经开发了几种可转移的技能:

  • 成本控制
  • 数据分析
  • 细致的思考/创造性的解决问题
  • 设施设计
  • 数学和定量技能
  • 组织管理
  • 对改进方法和系统有热情
  • 耐心
  • 质量控制
  • 研究
  • 对人为因素的理解
  • 对流程的理解
  • 乐于学习

拥有系统工程学位你能做什么?

作为更大的系统的一部分,每个行业的产品和系统都变得越来越复杂。这种更智能、互联系统的趋势转化为不断增长的系统工程就业市场。下面的就业部门列表,虽然不是详尽的,但说明了系统工程师广泛和不断扩大的就业选择。

  • 航空航天/航空业
  • 建筑及工程服务
  • 汽车
  • 银行和信用合作社
  • 生物技术和制药
  • 高等院校
  • 计算机硬件和软件
  • 建设
  • 网络安全
  • 电气电子制造业
  • 能源/石油和天然气勘探和生产
  • 环境
  • 财务分析与研究
  • 金融交易处理(信用卡公司)
  • 食品饮料制造业
  • 政府/联邦机构/军事/国防和情报部门
  • 医疗保健产品制造
  • 保健服务和医院
  • 酒店公司/连锁酒店/邮轮公司
  • 保险公司
  • 互动娱乐/游戏公司
  • 互联网/电子商务和社交媒体巨头
  • 投资银行和资产管理
  • IT服务/企业软件和网络解决方案
  • 大型零售商/超市
  • 物流及供应链
  • 电影制作和发行
  • 出版
  • 研发
  • 人员配备和外包
  • 证券交易所
  • 电信制造业
  • 电信服务/有线电视、互联网和电话提供商
  • 城市规划

学费

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