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  1. Programs
  2. APPLIED ENGINEERING

APPLIED ENGINEERING

The University of Tennessee-Knoxville

Bachelor's DegreeCIP: 14.0103

Become a contributor for free to openly demonstrate student outcomes, industry alignment & eligibility criteria.

No description available.

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Program Pathways

Credentials this program stacks toward

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Program Details

Detailed information about this program

No detailed information available.

Requirements

What you need to earn this credential

No requirements listed.

Financial Aid

Eligible funding programs

No funding information available.

Scholarships

No scholarships listed.

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Locations

Where this program is offered

  • Knoxville, Tennessee

    527 Andy Holt Tower, Knoxville, Tennessee, 37996

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Related Programs

Programs related to this one

No related programs.

Skills & Competencies

Skills developed through this program

Auto-populated·from O*NET via SOC 17-2199.11

Skills

Reading ComprehensionCritical ThinkingWritingComplex Problem SolvingActive ListeningJudgment and Decision MakingSpeakingMathematicsSystems AnalysisMonitoringScienceActive LearningSystems Evaluation

Knowledge

Engineering and TechnologyMathematicsDesignComputers and ElectronicsMechanicalPhysicsBuilding and ConstructionEnglish LanguageChemistryProduction and ProcessingCustomer and Personal Service

Abilities

Written ComprehensionWritten ExpressionDeductive ReasoningOral ExpressionInductive ReasoningOral ComprehensionInformation OrderingProblem SensitivityFluency of IdeasMathematical ReasoningOriginalityNear VisionNumber FacilityCategory FlexibilitySpeech Clarity

Tasks

  • Conduct engineering site audits to collect structural, electrical, and related site information for
  • Create plans for solar energy system development, monitoring, and evaluation activities.
  • Design or coordinate design of photovoltaic (PV) or solar thermal systems, including system componen
  • Create or maintain wind farm layouts, schematics, or other visual documentation for wind farms.
  • Recommend process or infrastructure changes to improve wind turbine performance, reduce operational
  • Create models to optimize the layout of wind farm access roads, crane pads, crane paths, collection
  • Analyze meteorological data.
  • Design electrical interconnections.
  • Design wind turbine components.
  • Estimate energy production by analyzing wind data.
  • Provide scientific or technical guidance or expertise to scientists, engineers, technologists, techn
  • Supervise technologists or technicians engaged in nanotechnology research or production.
  • Conduct research related to a range of nanotechnology topics, such as packaging, heat transfer, fluo
  • Review or approve designs, calculations, or cost estimates.
  • Process or interpret signals or sensor data.
  • Debug robotics programs.
  • Analyze system performance or operational requirements.
  • Develop optical or imaging systems, such as optical imaging products, optical components, image proc
  • Develop or test photonic prototypes or models.
  • Create schematics and physical layouts of integrated microelectromechanical systems (MEMS) component
  • Investigate characteristics such as cost, performance, or process capability of potential microelect
  • Create or maintain formal engineering documents, such as schematics, bills of materials, components
  • Create mechanical design documents for parts, assemblies, or finished products.
  • Design advanced precision equipment for accurate or controlled applications.
  • Design engineering systems for the automation of industrial tasks.
  • Identify and recommend energy savings strategies to achieve more energy-efficient operation.
  • Conduct energy audits to evaluate energy use and to identify conservation and cost reduction measure
  • Monitor and analyze energy consumption.
  • Develop final construction plans that include aesthetic representations of the structure or details
  • Prepare scale drawings or architectural designs, using computer-aided design or other tools.
  • Prepare information regarding design, structure specifications, materials, color, equipment, estimat

Technology

Computer aided design CAD softwareAnalytical or scientific softwareData base user interface and query softwareDevelopment environment softwareObject or component oriented development softwareGraphics or photo imaging softwareIndustrial control softwareOperating system softwareData base management system softwareFile versioning softwareBusiness intelligence and data analysis softwareContent workflow softwareProgram testing softwareComputer aided manufacturing CAM softwareSpreadsheet softwareDocument management softwareDesktop publishing software

Tools

Abrasion testersAccelerated weathering machinesAdhesion testersApparent power metersAtomic absorption spectrometersAuger electron spectrometersBench ovensChronopotentiometersCompression testersCopy machinesCoulometersCreep testersCurrent versus voltage IV curve tracersData loggersDifferential scanning calorimetersBarometric pressure sensorsCup anemometersDataloggersDesktop computersDigital still camerasDigital video camerasElectronic temperature sensorsHandheld global positioning system GPS unitsLaptop computersLight detection and ranging LIDAR systemsMainframe computersPortable meteorological stationsPropeller anemometersPyranometersRecording anemometers

Work Values

AchievementWorking ConditionsRecognitionIndependenceSupportRelationships
Career Pathways

Occupations this program prepares you for

  • Solar Energy Systems Engineers17-2199.11
  • Wind Energy Engineers17-2199.10
  • Nanosystems Engineers17-2199.09
  • Robotics Engineers17-2199.08
  • Photonics Engineers17-2199.07
  • Microsystems Engineers17-2199.06
  • Mechatronics Engineers17-2199.05
  • Energy Engineers, Except Wind and Solar17-2199.03
  • Engineers, All Other17-2199.00
What You'll Learn

Key competencies developed through this program

Auto-populated·from NSX Competency Framework

Mastery: proficient (Level 3)(based on Bachelor's Degree)

  • Complex site audits — lead comprehensive engineering audits of large commercial or industrial sites, synthesizing structural, electrical, and shading data into actionable design inputs.
  • Full-scope PV system design — independently design complete photovoltaic systems including array layout, inverter selection, and grid interconnection for commercial and industrial clients.
  • Solar thermal integration — engineer solar thermal systems with advanced controls and storage, coordinating with mechanical teams on complex building retrofits.
  • Advanced CAD documentation — produce fully code-compliant electrical single-line diagrams, panel schedules, and interconnection drawings for multimegawatt projects.
  • Optimization simulation — perform advanced computer modeling of PV generation performance across multiple scenarios, delivering data-driven recommendations to stakeholders.
  • Engineering change management — critically review fabrication and installation specifications, identifying and justifying design changes to meet solar performance objectives.
  • Commissioning leadership — direct installation teams through system commissioning, performance testing, and handover for non-routine or technically complex solar installations.
  • Functional requirements development — author detailed design specifications and functional requirements for novel solar energy system components or configurations.
  • Problem resolution — apply systems-level critical thinking to diagnose underperformance issues and implement corrective engineering solutions in the field.
  • Stakeholder communication — present complex technical findings and design rationale clearly to clients, regulators, and multidisciplinary project teams.

Some details on this page are auto-populated from public workforce data sources: O*NET (opens in new tab), BLS (opens in new tab), College Scorecard (opens in new tab), DOL Training Provider Results (opens in new tab), NSX (opens in new tab). Provided in partnership with LER.me Career Intelligence.

Student Outcomes

Performance metrics for this program

Auto-populated·from Scorecard + DOL
Completion Rate
28%
Placement Rate
77%