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    +91 88943 57155
    Pune, Maharashtra, India

    Duration

    4 Years

    Bachelor of Technology in Engineering

    NIMS University Jaipur
    Duration
    4 Years
    Engineering UG OFFLINE

    Duration

    4 Years

    Bachelor of Technology in Engineering

    NIMS University Jaipur
    Duration
    Apply

    Fees

    ₹6,50,000

    Placement

    94.5%

    Avg Package

    ₹4,80,000

    Highest Package

    ₹8,50,000

    OverviewAdmissionsCurriculumFeesPlacements
    4 Years
    Engineering
    UG
    OFFLINE

    Fees

    ₹6,50,000

    Placement

    94.5%

    Avg Package

    ₹4,80,000

    Highest Package

    ₹8,50,000

    Seats

    300

    Students

    1,200

    ApplyCollege

    Seats

    300

    Students

    1,200

    Curriculum

    Comprehensive Curriculum Overview

    The B.Tech Engineering program at Nims University Jaipur is meticulously structured to provide a balanced blend of theoretical knowledge and practical application. The curriculum spans eight semesters, with each semester containing core subjects, departmental electives, science electives, and laboratory courses.

    SemesterCourse CodeCourse TitleCredit Structure (L-T-P-C)Prerequisites
    IMTH101Calculus I3-1-0-4-
    IPHY101Physics I3-1-0-4-
    ICHE101Chemistry I3-1-0-4-
    IENG101English Communication Skills2-0-0-2-
    IECE101Introduction to Engineering2-0-0-2-
    ICSE101Programming Fundamentals3-0-2-4-
    IMEC101Mechanics of Materials3-1-0-4-
    ICIV101Engineering Drawing2-0-2-3-
    IELE101Basic Electrical Engineering3-1-0-4-
    IHSS101Humanities & Social Sciences2-0-0-2-
    IIMTH102Calculus II3-1-0-4MTH101
    IIPHY102Physics II3-1-0-4PHY101
    IICHE102Chemistry II3-1-0-4CHE101
    IIMTH103Linear Algebra & Differential Equations3-1-0-4MTH102
    IICSE102Data Structures & Algorithms3-1-2-5CSE101
    IIECE102Digital Electronics3-1-0-4ECE101
    IIMEC102Thermodynamics3-1-0-4MEC101
    IICIV102Strength of Materials3-1-0-4CIV101
    IIELE102Electrical Circuits & Networks3-1-0-4ELE101
    IIHSS102Cultural Studies2-0-0-2-
    IIIMTH201Probability & Statistics3-1-0-4MTH103
    IIICSE201Database Management Systems3-1-2-5CSE102
    IIIECE201Signals & Systems3-1-0-4ECE102
    IIIMEC201Fluid Mechanics3-1-0-4MEC102
    IIICIV201Soil Mechanics3-1-0-4CIV102
    IIIELE201Electromagnetic Fields3-1-0-4ELE102
    IIICSE202Operating Systems3-1-2-5CSE102
    IIIECE202Analog Electronics3-1-0-4ECE102
    IIIMEC202Mechanics of Machines3-1-0-4MEC102
    IIICIV202Structural Analysis3-1-0-4CIV102
    IIIELE202Power Electronics3-1-0-4ELE102
    IIIHSS201Psychology & Sociology2-0-0-2-
    IVMTH202Numerical Methods3-1-0-4MTH201
    IVCSE301Computer Networks3-1-2-5CSE201
    IVECE301Digital Signal Processing3-1-0-4ECE201
    IVMEC301Heat Transfer3-1-0-4MEC201
    IVCIV301Transportation Engineering3-1-0-4CIV201
    IVELE301Control Systems3-1-0-4ELE201
    IVCSE302Software Engineering3-1-2-5CSE201
    IVECE302VLSI Design3-1-0-4ECE202
    IVMEC302Mechatronics3-1-0-4MEC202
    IVCIV302Water Resources Engineering3-1-0-4CIV201
    IVELE302Microprocessors & Microcontrollers3-1-0-4ELE202
    IVHSS202Business Ethics & CSR2-0-0-2-
    VCSE401Artificial Intelligence3-1-2-5CSE301
    VECE401Wireless Communication3-1-0-4ECE301
    VMEC401Robotics & Automation3-1-0-4MEC302
    VCIV401Environmental Engineering3-1-0-4CIV301
    VELE401Power Systems3-1-0-4ELE301
    VCSE402Machine Learning3-1-2-5CSE401
    VECE402Optical Communication3-1-0-4ECE301
    VMEC402Advanced Manufacturing3-1-0-4MEC301
    VCIV402Geotechnical Engineering3-1-0-4CIV301
    VELE402Electrical Machines3-1-0-4ELE301
    VHSS301Leadership & Team Management2-0-0-2-
    VICSE501Cloud Computing3-1-2-5CSE401
    VIECE501Embedded Systems3-1-0-4ECE401
    VIMEC501Advanced Thermodynamics3-1-0-4MEC401
    VICIV501Urban Planning & Design3-1-0-4CIV401
    VIELE501Renewable Energy Systems3-1-0-4ELE401
    VICSE502Data Mining & Analytics3-1-2-5CSE401
    VIECE502RF & Microwave Engineering3-1-0-4ECE401
    VIMEC502Finite Element Analysis3-1-0-4MEC401
    VICIV502Construction Management3-1-0-4CIV401
    VIELE502Power Electronics & Drives3-1-0-4ELE401
    VIHSS302Innovation & Entrepreneurship2-0-0-2-
    VIICSE601Blockchain Technology3-1-2-5CSE501
    VIIECE601Optoelectronics3-1-0-4ECE501
    VIIMEC601Advanced Materials3-1-0-4MEC501
    VIICIV601Disaster Management3-1-0-4CIV501
    VIIELE601Smart Grids3-1-0-4ELE501
    VIICSE602Internet of Things (IoT)3-1-2-5CSE501
    VIIECE602Wireless Sensor Networks3-1-0-4ECE501
    VIIMEC602Computational Fluid Dynamics3-1-0-4MEC501
    VIICIV602Sustainable Development3-1-0-4CIV501
    VIIELE602Nuclear Power Systems3-1-0-4ELE501
    VIIHSS401Global Issues & Sustainability2-0-0-2-
    VIIICSE701Capstone Project - AI/ML4-0-0-4CSE601
    VIIIECE701Capstone Project - Electronics4-0-0-4ECE601
    VIIIMEC701Capstone Project - Mechanical4-0-0-4MEC601
    VIIICIV701Capstone Project - Civil4-0-0-4CIV601
    VIIIELE701Capstone Project - Electrical4-0-0-4ELE601
    VIIICSE702Mini Project - Software Engineering3-0-0-3CSE501
    VIIIECE702Mini Project - Embedded Systems3-0-0-3ECE501
    VIIIMEC702Mini Project - Manufacturing3-0-0-3MEC501
    VIIICIV702Mini Project - Structural Design3-0-0-3CIV501
    VIIIELE702Mini Project - Power Systems3-0-0-3ELE501

    Detailed Course Descriptions for Advanced Departmental Electives

    The department offers a wide array of advanced elective courses that allow students to specialize in their areas of interest and gain deeper insights into cutting-edge technologies. These courses are designed to align with industry trends and prepare students for professional success.

    Artificial Intelligence: This course explores the fundamental concepts of AI, including problem-solving, search algorithms, knowledge representation, planning, machine learning, neural networks, natural language processing, and robotics. Students will engage in practical projects involving image recognition, speech synthesis, and autonomous agents. The course emphasizes both theoretical foundations and real-world applications.

    Machine Learning: Focusing on supervised and unsupervised learning techniques, this course introduces students to regression, classification, clustering, dimensionality reduction, deep learning, reinforcement learning, and ensemble methods. Through hands-on assignments and a final project, students will develop practical skills in building predictive models using popular libraries like scikit-learn, TensorFlow, and PyTorch.

    Internet of Things (IoT): This course delves into the architecture, protocols, security, and applications of IoT systems. Students will learn about sensor networks, embedded systems, wireless communication, cloud integration, and data analytics in the context of smart cities, healthcare, agriculture, and industrial automation.

    Cloud Computing: Covering the fundamentals of cloud computing models (IaaS, PaaS, SaaS), virtualization, containerization, microservices, DevOps practices, and orchestration tools like Kubernetes, this course prepares students for deploying scalable applications in cloud environments. Practical sessions involve setting up cloud infrastructure using AWS, Azure, or GCP platforms.

    Blockchain Technology: This course examines the principles of blockchain technology, including cryptographic hashing, consensus mechanisms, smart contracts, decentralized applications (dApps), and digital currencies. Students will implement blockchain solutions using frameworks like Ethereum and Hyperledger, exploring real-world use cases in supply chain management, finance, and healthcare.

    Data Mining & Analytics: Emphasizing data preprocessing, statistical analysis, clustering, association rule mining, classification, regression, and text mining, this course provides students with tools and techniques to extract meaningful insights from large datasets. Using Python-based libraries such as pandas, NumPy, and scikit-learn, students will perform end-to-end data analytics projects.

    Embedded Systems: This course focuses on designing and implementing embedded systems using microcontrollers, real-time operating systems (RTOS), peripheral interfaces, communication protocols, and power management strategies. Students will develop practical skills in firmware development, hardware-software co-design, and system integration for applications ranging from automotive systems to consumer electronics.

    Wireless Communication: Covering the fundamentals of wireless propagation, modulation techniques, multiple access schemes, channel coding, antenna design, and wireless network architectures, this course prepares students for working in the telecommunications industry. Hands-on labs involve simulating wireless networks using MATLAB and NS-3, and implementing wireless communication systems with software-defined radios.

    Optoelectronics: This course explores the principles of light generation, detection, and modulation in semiconductor devices. Students will study photodiodes, LEDs, lasers, optical fibers, photonic integrated circuits, and their applications in telecommunications, sensing, and imaging technologies. Practical sessions involve designing and testing optoelectronic components using simulation software like Lumerical and COMSOL.

    Power Electronics & Drives: This course covers the analysis and design of power electronic converters, inverters, rectifiers, DC-DC converters, and motor drives. Students will learn about switching characteristics, control strategies, efficiency optimization, and applications in renewable energy systems, electric vehicles, and industrial automation.

    Renewable Energy Systems: Focusing on solar, wind, hydroelectric, and geothermal energy conversion technologies, this course examines the design, installation, and operation of renewable energy systems. Students will analyze system performance using simulation tools like PVsyst, HOMER Pro, and MATLAB/Simulink, and evaluate economic viability and environmental impact.

    Advanced Thermodynamics: Building upon basic thermodynamic principles, this course explores advanced topics such as phase equilibrium, chemical reactions, entropy generation, and thermodynamic cycles. Students will analyze complex thermodynamic processes and design energy-efficient systems using computer simulation tools like EES (Engineering Equation Solver) and Aspen Plus.

    Finite Element Analysis: This course introduces the finite element method for solving engineering problems in structural mechanics, heat transfer, fluid dynamics, and electromagnetics. Students will develop proficiency in using commercial FEA software like ANSYS, ABAQUS, and NASTRAN to model and analyze real-world engineering scenarios.

    Computational Fluid Dynamics: Focusing on numerical methods for solving Navier-Stokes equations, this course covers turbulence modeling, grid generation, boundary conditions, and solution algorithms. Students will apply CFD techniques to analyze flow fields in aerospace, automotive, chemical processing, and environmental applications using software tools like Fluent, STAR-CCM+, and OpenFOAM.

    Project-Based Learning Philosophy

    The department strongly believes in project-based learning as a powerful pedagogical approach that bridges the gap between theory and practice. Students engage in both mini-projects and final-year thesis/capstone projects throughout their academic journey, ensuring comprehensive skill development and industry readiness.

    Mini-projects are undertaken during the second and third years of study, typically lasting 2-3 months. These projects allow students to explore specific areas of interest within their major, apply classroom knowledge to real-world problems, and develop teamwork and communication skills. Projects may involve designing a simple electronic circuit, developing a basic software application, or conducting an experimental study in a specialized field.

    Final-year thesis/capstone projects span the entire academic year (8 months) and represent the culmination of students' learning experiences. These projects are conducted under the supervision of faculty members with expertise in relevant domains. Students are expected to propose innovative solutions to complex engineering challenges, demonstrate proficiency in research methodology, and present their findings through written reports and oral presentations.

    Project selection is facilitated by a structured process involving faculty guidance, student preferences, industry collaborations, and research opportunities. Students often collaborate with external partners, including startups, government agencies, and multinational corporations, to ensure relevance and impact of their work.

    Evaluation criteria for projects include technical depth, innovation, feasibility, documentation quality, presentation skills, and overall contribution to the field of engineering. Regular progress reviews, milestone assessments, and final evaluations ensure continuous improvement and accountability throughout the project lifecycle.