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Artificial Intelligence & Machine Learning with Python

Master the future with Python, AI, and Machine Learning. Get hands-on experience with real-world projects, expert mentoring, and 100% placement support.
Instructor Led/Self Paced
Weekend/Weekday
50 Hours

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Transform Your Future: Hands-On AI & Machine Learning With Python

Enroll in our comprehensive 45-hours Python AIML online training which offers a complete package to equip students and early career professionals to excel the skills to build a successful career in AI/ML. Our AI & Machine Learning with Python course assures job placements and provides practical training, real life projects and workshops that will enable you to seamlessly step into the industry as a Data Scientist, AI/ML Engineer, Data Analyst, and a Python Developer.

Why Scikit-Learn & TensorFlow Python Are Must-Learn AI/ML Tools?

The popularity of Python in AI and ML technologies is primarily due to its ease of use, versatility, extensive libraries, and the powerful tools such as TensorFlow, Scikit-learn Python, which simplify complicated tasks. These technologies simplify the process of creating robust AI and ML models and frameworks for practical implementations. The clear syntax of Python, with its strong community, facilitates the rapid prototyping, testing, and deployment of AI and ML models. Its versatility and ability to integrate with other technologies further enhances its relevance to AI/ML applications.

Why Enroll In Our Python AI & ML Course?

  • Comprehensive Training: From the basic syntax of Python to AI deep learning and even advanced machine learning capabilities, we make sure to deepen your knowledge.

  • Industry-Relevant Skills: Learn the tools and techniques that are in high demand in industry. Learn the skills identified by today’s leading technological organizations well before the rest of the workforce.

  • Hands-On Projects: Turn theory into practice with real-world applications. Build a strong portfolio of AI/ML models and solutions that you can showcase to employers, helping you stand out in the competitive industry.

  • Placement Assistance: We guide you in every possible way during your job search by designing tailored job winning resumes, strategic networking, mock interviews, and much more.

  • Expert Instructors: Learn directly from our industry expert trainers who have 10+ years of experience in Python programming for AI & ML. Our instructors provide valuable insights and guidance to ensure you're job-ready.

Why Choose Us

Learn Python AI & ML from Certified Experts – 100% Hands-On, Job-Oriented Training

Our Python AI & ML Online Training curriculum is delivered exclusively by certified industry experts, each with 12+ years of direct hands-on experience in artificial intelligence, machine learning, and data science. Instead of passive video courses or self-paced modules, you get live, real-time training with interactive sessions where instructors share industry-proven methodologies, address your questions, and guide you through complex AI/ML implementation scenarios in a step-by-step manner.

Expert-led Training

Learn from certified professionals with real-world industry experience in AI & ML.

Real-time Projects

Work on live capstone projects and case studies to build a strong portfolio.

24/7 Server Access

Practice anytime with interrupted access to our dedicated training servers and labs.

Placement support

Dedicated assistance with resume building, mock interviews, and job referrals.

Flexible Schedule

Weekend and weekday batches available to suit working professionals and students.

Certification

Receive a recognized certification upon successful course completion.

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Success Guarantee & Credibility

Why Professionals Choose ERPVITS for Python AI & ML Online Training

ERPVITS has proven to be a reliable training institute for AI & ML technologies, with many successful learners employed by leading tech giants. Our alumni network testimonials speak to the quality of instruction and the career acceleration our program delivers.
Trusted by 500+ successful Python AI & ML professionals
Alumni at Google, Microsoft, Amazon, NVIDIA, IBM
Personalized pre-evaluation and AI learning path
Active alumni network and AI developer community forum
50+ guided lab exercises from basic to advanced AI/ML scenarios
Quarterly updated materials aligned with latest Python & AI libraries
Mock interviews simulating real AI engineer scenarios
Dedicated Python AI & ML certification prep and bootcamp sessions
Complete support Ecosystem
Course Syllabus

Course Outline of Python AIML [32 Sessions | 45 Hours | 8 Modules]

SessionModule/TopicHoursDescription / Hands-On Activities
1Python Refresher & Environment Setup3Python installation, IDE setup, syntax, indentation, basic programs
2Python: Variables, Data Types, Operators2Numeric, strings, lists, tuples, dictionaries, sets, operators, type conversions
3Python: Control Structures & Functions2Conditional statements, loops, functions, lambda expressions
4Python: OOP Concepts & Exception Handling3Classes, inheritance, polymorphism, encapsulation, exceptions, try-except-finally
5Python: File Handling, Modules, and Packages2Reading/Writing files (CSV, JSON), importing packages, creating modules
6Python Libraries: NumPy & Pandas2Numerical operations, data manipulation, EDA
7Python Libraries: Matplotlib & Seaborn2Data visualization techniques and hands-on plotting
8Introduction to AI & ML2AI vs. ML vs. DL, Types of ML (Supervised, Unsupervised, Reinforcement)
9Data Preprocessing Techniques2Data cleaning, feature scaling, handling missing values
10Supervised Learning: Regression2Linear regression, MSE, R², hands-on project
11Supervised Learning: Classification - Part 12Logistic regression, confusion matrix, precision, recall, hands-on
12Supervised Learning: Classification - Part 22Decision Trees, Random Forest, KNN, hands-on with case studies
13Supervised Learning: Advanced Models2support Vector Machines (SVM), hands-on with real datasets
14Unsupervised Learning Techniques2K-Means clustering, hierarchical clustering, PCA, hands-on
15Model Evaluation & Hyperparameter Tuning2Cross-validation, GridSearch, model selection, ROC/AUC
16Introduction to Deep Learning2Neural network concepts, perceptron, multilayer networks, backpropagation
17Deep Learning: Convolutional Neural Networks (CNNs)2CNN architecture, convolution, pooling, hands-on image classification
18Deep Learning: Recurrent Neural Networks (RNNs)2LSTM, GRU, hands-on time-series data and text data
19Natural Language Processing (NLP)2Text preprocessing, tokenization, embedding, sentiment analysis
20Advanced NLP Models & Transformers2BERT basics, Transformers, text classification/summarization
21Computer Vision with OpenCV2Image processing, edge detection, segmentation, object detection basics
22Introduction to Reinforcement Learning (RL)2RL concepts, Markov Decision Processes (MDPs), Q-learning
23AI Model Deployment Techniques2Flask/FastAPI, deploying ML models, API integration
24Cloud Deployment & MLOps Basics1AWS/GCP/Azure basics, CI/CD, Model monitoring
25Ethics, Privacy & Security in AI1Ethical AI, responsible ML, data privacy, GDPR
26Project & Placement Preparation (Technical Skills)2Resume building, AI/ML coding challenges, mock technical interviews
27Placement Preparation (Professional & HR Skills)1Behavioral interview prep, LinkedIn profile optimization, networking
28Capstone Project Initiation1Project selection, data gathering, defining objectives
29Capstone Project Execution - Part 12Data exploration, model selection, initial training
30Capstone Project Execution - Part 22Hyperparameter tuning, validation, model optimization
31Capstone Project Execution - Part 3 (Deployment)2Model deployment, API setup, user interface integration
32Capstone Project Presentation & Review2Project presentation, feedback session

List of Tools & Modules Covered

Python (Core Language)

NumPy, Pandas, Matplotlib, Seaborn

Scikit-learn, TensorFlow/Keras

OpenCV (Computer Vision)

NLTK, Transformers (NLP)

Flask/FastAPI (Deployment)

AWS/GCP/Azure (Basics of Cloud)

Git & GitHub (Version Control)

Assessment Methodology:

  • Mid-Course Assessment (Theory + Practical): An organised assessment of students' comprehension of artificial intelligence and machine learning with Python concepts is carried out halfway through the course. Both knowledge and practical application are tested through theoretical examinations and practical coding challenges.

  • Capstone Project Evaluation (End of Course): A thorough evaluation in which students work on an actual AIML project to show that they can create, refine, and implement models. Feedback on model performance, problem-solving methodology, and coding efficiency is given by evaluators.

These methodologies make sure the mastery of concepts and readiness for hands-on machine learning & AI applications!

Complete Learning Package

Course Benefits

Everything you need to become a certified professional—from live training to career support

Live Interactive Classes

45-50 hours of instructor led training over 8-12 weeks via video conference with real-time Q&A

Real-World Projects

Fortune 500 case studies and practical implementations tailored to Python AI & ML requirements

Hands-On Lab Environment

Full access to Python AI & ML systems for hands-on practice, guided exercises, and real-world scenarios

Certification Exam Prep

Practice exams, study guides, and bootcamp for Python AI & ML certification tracks

Resume & Interview Coaching

Resume optimization, technical interview prep, mock consulting interviews with feedback

Complete Study Materials

PDFs, presentations, checklists, interview question banks, and official SAP documentation links

Lifetime Recording Access

All sessions professionally recorded, transcribed, and indexed for easy search and revision

Expert Q&A Sessions

Weekly 60 minute live sessions for concept clarification, career advice, and peer learning
45-50
Hours of Live Training
50+
Hands On Lab Exercises
24/7
Python AI & ML Lab Access

Jobs & Career In Python AIML

Jobs in Python AIML have increased in accordance with the growth of AI. Employers are actively looking for experts with practical knowledge of deep learning AI frameworks, machine learning algorithms, and AI deployment strategies. Professional opportunities can be greatly improved by Python AIML certifications, projects, and hands-on experience.

The AI-driven economy is changing this field quickly, and professionals can stay ahead of the curve by continuing their education! Contact us today for the best python programming for ai & machine learning online course and achieve your dream career in Python.

Job RoleSkills RequiredTop Hiring CompaniesAvg. Salary (Freshers)
Machine Learning EngineerPython, TensorFlow, PyTorch, Scikit-learn, Model OptimizationGoogle, Microsoft, Amazon, NVIDIA₹5L - ₹8L
Data ScientistPython, Pandas, NumPy, SQL, Data VisualizationIBM, Accenture, Meta, Deloitte₹5L - ₹9L
AI Research ScientistDeep Learning, Reinforcement Learning, NLP, Computer VisionOpenAI, DeepMind, Apple, Tesla₹6L - ₹10L
Computer Vision EngineerOpenCV, TensorFlow, PyTorch, Image ProcessingAdobe, Qualcomm, Intel, Siemens₹5L - ₹9L
NLP EngineerNLP, Transformers, BERT, SpaCy, NLTKSalesforce, SAP, Twitter, Grammarly₹5L - ₹9L
AI Software DeveloperPython, Flask, FastAPI, API DevelopmentOracle, Cisco, Infosys, TCS₹4L - ₹7L
MLOps EngineerDocker, Kubernetes, CI/CD, Cloud ComputingAWS, Google Cloud, Azure, IBM₹5L - ₹9L
AI Solutions ArchitectAI Model Deployment, Cloud Integration, System ArchitectureCapgemini, Wipro, Cognizant, HCL₹6L - ₹10L
Cloud AI EngineerCloud AI Services, Model Deployment, API IntegrationAmazon Web Services, Google Cloud, Microsoft Azure₹5L - ₹9L

Happy Students Say After Course Completion

"For me, this course changed everything! My confidence in AI/ML increased as a result of the practical projects and real-world applications. The teachers were very helpful and made difficult subjects simple to comprehend."

R
Rahul Sharma
Infosys Data Scientist

"Before beginning, I knew nothing about Python, but now I can build AI models with confidence. The industry projects and organised learning path were crucial."

P
Priya Desai
Accenture AI Engineer

"The modules for placement preparation were very good! I got a fantastic job in AI thanks to the career counselling, practice interviews, and resume-building sessions."

A
Arjun Patel
TCS Machine Learning Engineer
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Why Professionals Choose ERPVITS for Python AI & ML

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45 Hours of Instructor-led Training
Hands-on Python, AI & ML Projects
Placement Assistance & Mock Interviews
Real-world Case Studies (Vision, NLP)
Lifetime Access to Recordings
Cloud & MLOps Deployment Basics

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