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    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Bachelor of Technology in Engineering

    Indira University Pune
    Duration
    4 Years
    Engineering UG OFFLINE

    Duration

    4 Years

    Bachelor of Technology in Engineering

    Indira University Pune
    Duration
    Apply

    Fees

    ₹3,50,000

    Placement

    92.0%

    Avg Package

    ₹4,50,000

    Highest Package

    ₹8,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Engineering
    UG
    OFFLINE

    Fees

    ₹3,50,000

    Placement

    92.0%

    Avg Package

    ₹4,50,000

    Highest Package

    ₹8,00,000

    Seats

    1,200

    Students

    1,200

    ApplyCollege

    Seats

    1,200

    Students

    1,200

    Curriculum

    Comprehensive Course Structure

    The curriculum of Indira University Pune's Engineering program is meticulously designed to provide students with a balanced blend of theoretical knowledge and practical application. The program spans eight semesters, each containing a mix of core engineering subjects, departmental electives, science electives, and laboratory-based learning experiences.

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Prerequisites
    1ENG101Engineering Mathematics I3-1-0-4None
    1ENG102Physics for Engineers3-1-0-4None
    1ENG103Chemistry for Engineers3-1-0-4None
    1ENG104Engineering Graphics and Design2-0-2-4None
    1ENG105Basic Electrical Engineering3-1-0-4None
    1ENG106Introduction to Programming2-0-2-4None
    1ENG107Workshop Practice I0-0-3-3None
    1ENG108Communication Skills2-0-0-2None
    2ENG201Engineering Mathematics II3-1-0-4ENG101
    2ENG202Thermodynamics and Heat Transfer3-1-0-4ENG102
    2ENG203Materials Science and Engineering3-1-0-4ENG103
    2ENG204Electrical Circuits and Networks3-1-0-4ENG105
    2ENG205Computer Programming3-1-0-4ENG106
    2ENG206Workshop Practice II0-0-3-3ENG107
    2ENG207Engineering Ethics and Professionalism2-0-0-2None
    3ENG301Fluid Mechanics and Hydraulic Machines3-1-0-4ENG202
    3ENG302Mechanics of Solids3-1-0-4ENG203
    3ENG303Digital Electronics and Logic Design3-1-0-4ENG204
    3ENG304Data Structures and Algorithms3-1-0-4ENG205
    3ENG305Signals and Systems3-1-0-4ENG201
    3ENG306Workshop Practice III0-0-3-3ENG206
    4ENG401Control Systems3-1-0-4ENG305
    4ENG402Machine Design3-1-0-4ENG302
    4ENG403Computer Architecture and Organization3-1-0-4ENG303
    4ENG404Operating Systems3-1-0-4ENG304
    4ENG405Probability and Statistics for Engineers3-1-0-4ENG201
    4ENG406Workshop Practice IV0-0-3-3ENG306
    5ENG501Advanced Control Systems3-1-0-4ENG401
    5ENG502Heat Transfer and Mass Transfer3-1-0-4ENG301
    5ENG503Software Engineering3-1-0-4ENG404
    5ENG504Microprocessors and Microcontrollers3-1-0-4ENG303
    5ENG505Advanced Mathematics for Engineering3-1-0-4ENG201
    5ENG506Workshop Practice V0-0-3-3ENG406
    6ENG601Industrial Engineering and Management3-1-0-4ENG501
    6ENG602Advanced Machine Design3-1-0-4ENG402
    6ENG603Computer Networks3-1-0-4ENG404
    6ENG604Data Mining and Machine Learning3-1-0-4ENG505
    6ENG605Advanced Signals and Systems3-1-0-4ENG305
    6ENG606Workshop Practice VI0-0-3-3ENG506
    7ENG701Capstone Project I2-0-4-6ENG601
    7ENG702Project Management and Entrepreneurship3-1-0-4ENG601
    7ENG703Advanced Software Design3-1-0-4ENG503
    7ENG704Research Methodology and Project Planning2-0-2-4ENG604
    7ENG705Advanced Topics in Engineering3-1-0-4ENG605
    7ENG706Workshop Practice VII0-0-3-3ENG606
    8ENG801Capstone Project II2-0-4-6ENG701
    8ENG802Internship Program0-0-3-3None
    8ENG803Professional Ethics and Social Responsibility2-0-0-2None
    8ENG804Final Year Project Presentation0-0-3-3ENG701
    8ENG805Industry Exposure and Career Counseling2-0-0-2None
    8ENG806Workshop Practice VIII0-0-3-3ENG706

    Detailed Course Descriptions

    Advanced Control Systems (ENG501) introduces students to the mathematical modeling and design of control systems using classical and modern control theory. Students learn how to analyze stability, performance, and robustness of closed-loop systems and apply techniques such as root locus, Bode plots, and state-space methods.

    Heat Transfer and Mass Transfer (ENG502) explores the fundamental principles governing heat conduction, convection, and radiation, along with mass transfer processes. Students study applications in industrial equipment design, chemical reactors, and environmental systems, gaining hands-on experience through laboratory experiments and simulations.

    Software Engineering (ENG503) covers the systematic approach to software development, including requirements analysis, system design, implementation, testing, and maintenance. The course emphasizes best practices for team collaboration, version control, agile methodologies, and software architecture patterns.

    Microprocessors and Microcontrollers (ENG504) delves into the architecture and programming of microprocessor systems and microcontroller units. Students gain proficiency in assembly language programming, interfacing with peripheral devices, embedded system design, and real-time operating systems.

    Advanced Mathematics for Engineering (ENG505) builds upon foundational mathematical concepts to cover advanced topics such as complex analysis, partial differential equations, numerical methods, and linear algebra. The course prepares students for specialized engineering disciplines that require rigorous mathematical modeling.

    Industrial Engineering and Management (ENG601) combines principles of industrial engineering with management science to optimize production processes and improve efficiency. Students study operations research, lean manufacturing, quality control, supply chain management, and strategic planning in industrial settings.

    Advanced Machine Design (ENG602) focuses on the design and analysis of mechanical components under various loading conditions. Topics include fatigue analysis, stress concentration factors, failure theories, and material selection criteria for high-performance applications.

    Computer Networks (ENG603) explores the architecture, protocols, and security aspects of modern communication networks. Students learn about LANs, WANs, wireless networks, network topologies, routing algorithms, and network management tools.

    Data Mining and Machine Learning (ENG604) introduces students to data-driven techniques for extracting patterns and insights from large datasets. The course covers supervised and unsupervised learning algorithms, neural networks, decision trees, clustering methods, and practical applications in business intelligence and scientific research.

    Advanced Signals and Systems (ENG605) extends the study of signals and systems to include advanced topics such as discrete-time processing, Z-transforms, digital filters, and spectral analysis. Students apply these concepts to image processing, audio signal enhancement, and biomedical signal analysis.

    Project-Based Learning Philosophy

    The department's philosophy on project-based learning is rooted in the belief that practical experience enhances conceptual understanding and develops critical thinking skills. Students engage in both mini-projects during their second and third years and a comprehensive final-year thesis or capstone project.

    Mini-projects are designed to reinforce core concepts learned in foundational courses and provide opportunities for interdisciplinary collaboration. Each project is supervised by faculty members who guide students through problem identification, literature review, design planning, prototyping, and presentation preparation.

    The final-year thesis/capstone project represents the culmination of a student's academic journey. Students select a topic aligned with their specialization or personal interest, often inspired by real-world challenges posed by industry partners or faculty research initiatives. The project spans two semesters and requires students to conduct independent research, develop innovative solutions, and present findings to a panel of experts.

    Project selection involves a formal process where students submit proposals outlining their objectives, methodology, timeline, and expected outcomes. Faculty mentors are assigned based on expertise alignment and availability. Regular progress meetings ensure that projects stay on track and meet academic standards.