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    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Bachelor of Network Engineering

    Technocrats Institute of Technology, Computer Science and Engineering
    Duration
    4 Years
    Bachelor of Network Engineering UG OFFLINE

    Duration

    4 Years

    Bachelor of Network Engineering

    Technocrats Institute of Technology, Computer Science and Engineering
    Duration
    Apply

    Fees

    N/A

    Placement

    94.0%

    Avg Package

    ₹7,50,000

    Highest Package

    ₹12,00,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Bachelor of Network Engineering
    UG
    OFFLINE

    Fees

    N/A

    Placement

    94.0%

    Avg Package

    ₹7,50,000

    Highest Package

    ₹12,00,000

    Seats

    N/A

    Students

    N/A

    ApplyCollege

    Seats

    N/A

    Students

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    Curriculum

    Course Schedule Overview

    The Bachelor of Network Engineering program spans four years, divided into eight semesters. Each semester includes a combination of core courses, departmental electives, science electives, and laboratory sessions designed to build foundational knowledge progressively.

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Prerequisites
    1CS101Introduction to Computer Science3-1-0-4-
    1MA101Mathematics I3-1-0-4-
    1PH101Physics for Computer Science3-1-0-4-
    1EC101Electronics Fundamentals3-1-0-4-
    1CS102Programming in C2-0-2-4-
    2CS201Data Structures and Algorithms3-1-0-4CS102
    2MA201Mathematics II3-1-0-4MA101
    2PH201Electromagnetic Fields and Waves3-1-0-4PH101
    2CS202Object-Oriented Programming in Java2-0-2-4CS102
    2EC201Digital Logic Design3-1-0-4EC101
    3CS301Computer Networks I3-1-0-4CS201, EC201
    3MA301Probability and Statistics3-1-0-4MA201
    3CS302Operating Systems3-1-0-4CS201
    3EC301Analog and Digital Communications3-1-0-4PH201, EC201
    3CS303Database Management Systems3-1-0-4CS201
    4CS401Computer Networks II3-1-0-4CS301
    4MA401Numerical Methods3-1-0-4MA201
    4CS402Software Engineering3-1-0-4CS201, CS302
    4EC401Signal Processing and Control Systems3-1-0-4PH201, MA301
    4CS403Web Technologies3-1-0-4CS302
    5CS501Network Security and Cryptography3-1-0-4CS401
    5CS502Wireless Communication Systems3-1-0-4CS401
    5CS503Network Management and Monitoring3-1-0-4CS401
    5CS504Cloud Computing Fundamentals3-1-0-4CS302
    6CS601Advanced Network Protocols3-1-0-4CS501
    6CS602IoT and Embedded Systems3-1-0-4CS502
    6CS603Network Automation and DevOps3-1-0-4CS402
    6CS604Artificial Intelligence in Networking3-1-0-4CS501
    7CS701Mini Project I0-0-6-6CS501, CS502
    7CS702Mini Project II0-0-6-6CS601, CS602
    8CS801Final Year Thesis/Capstone Project0-0-12-12All previous semesters

    Advanced Departmental Electives

    Advanced departmental electives are designed to deepen students' understanding of specialized areas within network engineering. Here are descriptions for some of the key courses:

    Network Security and Cryptography

    This course provides an in-depth exploration of cryptographic algorithms, secure communication protocols, and network defense mechanisms. Students learn how to implement and evaluate encryption standards like AES, RSA, and elliptic curve cryptography. The curriculum includes hands-on labs where students simulate real-world attacks and defend against them using industry-standard tools.

    Wireless Communication Systems

    This elective covers the principles of wireless transmission, including modulation techniques, multiple access schemes, and interference management. Students study 5G and future technologies, analyzing their impact on network infrastructure. Practical sessions involve building and testing wireless networks in controlled lab environments.

    Network Management and Monitoring

    This course focuses on tools and techniques used to monitor, manage, and optimize complex network infrastructures. Topics include performance metrics, fault detection, capacity planning, and network management protocols such as SNMP and NETCONF. Students gain experience with industry-grade monitoring platforms like Nagios and SolarWinds.

    Cloud Computing Fundamentals

    Students explore cloud architectures, service models (IaaS, PaaS, SaaS), and virtualization technologies. The course includes designing scalable cloud networks, integrating public and private clouds, and understanding security implications in distributed computing environments. Labs involve configuring cloud instances using AWS, Azure, and Google Cloud.

    Advanced Network Protocols

    This advanced elective delves into the intricacies of modern network protocols such as BGP, OSPF, and MPLS. Students analyze protocol behavior under various conditions and implement custom routing algorithms. The course emphasizes practical applications in large-scale enterprise networks and internet backbone systems.

    IoT and Embedded Systems

    This course explores the integration of sensors and devices into networked environments. Students learn about low-power communication protocols, edge computing, and real-time data processing. Labs focus on building IoT gateways and deploying sensor networks in smart city applications.

    Network Automation and DevOps

    The course introduces students to automation frameworks like Ansible, Puppet, and Chef, as well as CI/CD pipelines for network operations. Students learn how to automate network configuration, monitoring, and troubleshooting tasks. Practical exercises include deploying automated network testing suites and integrating infrastructure-as-code practices.

    Artificial Intelligence in Networking

    This cutting-edge course integrates AI and machine learning into network management. Students study neural networks, reinforcement learning, and predictive analytics applied to network performance optimization. Labs involve developing AI models that predict network failures or optimize bandwidth allocation.

    Project-Based Learning Philosophy

    The department emphasizes project-based learning as a cornerstone of the curriculum. Projects are structured to mirror real-world challenges faced by industry professionals, allowing students to apply theoretical knowledge in practical settings.

    Mini-projects begin in the third year, with each student selecting a topic related to their area of interest. These projects span six weeks and culminate in a presentation and documentation. Students work under faculty supervision, receiving feedback throughout the process.

    The final-year thesis is a significant undertaking that allows students to conduct independent research or develop innovative solutions for network engineering challenges. The selection process involves proposal submissions, mentor pairing, and regular progress reviews. Final presentations are held before a panel of faculty members and industry experts.