Collegese

Welcome to Collegese! Sign in →

Collegese

    Search colleges and courses

    Search and navigate to colleges and courses

    Start your journey

    Ready to find your dream college?

    Join thousands of students making smarter education decisions.

    Watch How It WorksGet Started

    Discover

    Browse & filter colleges

    Compare

    Side-by-side analysis

    Explore

    Detailed course info

    Collegese

    India's education marketplace helping students discover the right colleges, compare courses, and build careers they deserve.

    © 2026 Collegese. All rights reserved. A product of Nxthub Consulting Pvt. Ltd.

    Apply

    Scholarships & exams

    support@collegese.com
    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Electrical Engineering

    BAGULA MUKHI COLLEGE OF TECHNOLOGY
    Duration
    4 Years
    Electrical Engineering UG OFFLINE

    Duration

    4 Years

    Electrical Engineering

    BAGULA MUKHI COLLEGE OF TECHNOLOGY
    Duration
    Apply

    Fees

    ₹3,00,000

    Placement

    92.5%

    Avg Package

    ₹6,20,000

    Highest Package

    ₹9,50,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Electrical Engineering
    UG
    OFFLINE

    Fees

    ₹3,00,000

    Placement

    92.5%

    Avg Package

    ₹6,20,000

    Highest Package

    ₹9,50,000

    Seats

    180

    Students

    250

    ApplyCollege

    Seats

    180

    Students

    250

    Curriculum

    Curriculum Overview

    The Electrical Engineering curriculum at BAGULA MUKHI COLLEGE OF TECHNOLOGY is structured to provide students with a strong foundation in fundamental principles followed by specialization in advanced areas. The program spans eight semesters, each building upon the previous one to ensure a comprehensive understanding of the field.

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Prerequisites
    1ENG101Engineering Mathematics I3-1-0-4-
    1PHY101Physics for Engineers3-1-0-4-
    1CHE101Chemistry for Engineers3-1-0-4-
    1ECE101Basic Electrical Engineering3-1-0-4-
    1COM101Communication Skills2-0-0-2-
    1PROG101Programming for Engineers2-0-2-4-
    2ENG102Engineering Mathematics II3-1-0-4ENG101
    2ECE102Circuit Analysis3-1-0-4ECE101
    2PHY102Electromagnetic Fields3-1-0-4PHY101
    2ECE103Electronic Devices3-1-0-4ECE101
    2PROG102Data Structures and Algorithms2-0-2-4PROG101
    3ECE201Signals and Systems3-1-0-4ENG102
    3ECE202Power Electronics3-1-0-4ECE103
    3ECE203Control Systems3-1-0-4ECE102
    3ECE204Digital Logic Design3-1-0-4ECE103
    3STAT101Probability and Statistics3-1-0-4ENG102
    4ECE301Microprocessors & Microcontrollers3-1-0-4ECE204
    4ECE302Communication Systems3-1-0-4ECE201
    4ECE303Digital Signal Processing3-1-0-4ECE201
    4ECE304Power Systems Analysis3-1-0-4ECE202
    4PROJ101Mini Project I0-0-6-3-
    5ECE401Embedded Systems3-1-0-4ECE301
    5ECE402Antennas and Wave Propagation3-1-0-4ECE201
    5ECE403Electromagnetic Compatibility3-1-0-4PHY102
    5ECE404Renewable Energy Systems3-1-0-4ECE204
    5PROJ102Mini Project II0-0-6-3-
    6ECE501VLSI Design3-1-0-4ECE204
    6ECE502Smart Grid Technologies3-1-0-4ECE304
    6ECE503AI and Machine Learning3-1-0-4ECE201
    6ECE504Bioelectronics3-1-0-4ECE203
    6PROJ103Mini Project III0-0-6-3-
    7ECE601Advanced Power Converters3-1-0-4ECE202
    7ECE602Wireless Networks3-1-0-4ECE302
    7ECE603Robotics and Control3-1-0-4ECE203
    7ECE604Quantum Computing Fundamentals3-1-0-4ECE201
    7PROJ104Mini Project IV0-0-6-3-
    8ECE701Final Year Project / Thesis0-0-12-12-

    Advanced Departmental Electives

    These advanced elective courses are offered in the latter semesters and allow students to specialize in specific areas of interest:

    • Advanced Power Converters: This course delves into high-efficiency power conversion techniques, including DC-DC converters, AC-DC rectifiers, and resonant converters. Students learn how to design and analyze converters for applications in renewable energy systems and electric vehicles.
    • Wireless Networks: Focused on modern wireless communication standards such as 5G, Wi-Fi, Bluetooth, and IoT protocols. The course covers network architecture, signal propagation models, and security issues in wireless environments.
    • Robotics and Control: Combines principles of control theory with robotics applications. Students design and implement robotic systems using microcontrollers and sensors, focusing on autonomous navigation and manipulation tasks.
    • Quantum Computing Fundamentals: Introduces the basics of quantum mechanics and quantum algorithms. Students explore how quantum computers differ from classical ones and gain hands-on experience with quantum simulation tools.
    • Smart Grid Technologies: Examines smart grid components such as advanced metering infrastructure, demand response systems, and distributed energy resources. The course includes case studies from global smart grid implementations.
    • AI and Machine Learning: Covers supervised and unsupervised learning techniques, neural networks, deep learning architectures, and reinforcement learning. Applications include image recognition, natural language processing, and predictive analytics.
    • Bioelectronics: Focuses on electronic devices used in medical applications, such as pacemakers, hearing aids, and brain-machine interfaces. Students learn about biosensors, biocompatibility issues, and regulatory requirements for medical devices.
    • VLSI Design: Involves designing integrated circuits using CAD tools and techniques. Topics include logic synthesis, layout design, testing, and optimization of VLSI systems for various applications including processors and memory chips.

    Project-Based Learning Philosophy

    Our department strongly believes in project-based learning as a means to bridge the gap between theory and practice. Students are encouraged to work on real-world projects throughout their academic journey, starting from mini-projects in early semesters to final-year capstone projects.

    The structure of these projects is carefully designed to ensure maximum impact:

    • Mini Projects: In the second year, students work in small teams on a fixed topic under faculty supervision. These projects last for 3-4 months and involve planning, execution, documentation, and presentation.
    • Capstone Project: In the final year, students select a research-oriented project that aligns with their specialization. They work closely with a faculty mentor to define objectives, conduct literature review, develop methodology, carry out experiments, and write a comprehensive thesis.

    Evaluation criteria include:

    • Technical competence
    • Problem-solving ability
    • Team collaboration skills
    • Quality of documentation and presentation
    • Innovation and creativity

    Students are supported through regular feedback sessions, access to research databases, and opportunities to present their work at national conferences and symposiums. The goal is to produce graduates who are not only technically skilled but also capable of leading innovation in their chosen fields.