moventAI

From Deep Learning to a Deployed Capstone

Neural networks, computer vision, NLP, and generative AI — then a team project you actually ship, deployed to the cloud and demoed live.

Months
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Phases
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Instructor-Led Hours
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Certificate
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Core Tools
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About The Programme

Two Courses. Your Choice.

This is Part 2 — it stands on its own and is job-ready by itself. Already done AI & ML Foundations? This is your natural next step. Already comfortable with Python, statistics, and classical ML on your own? You can start right here.

Advanced AI & Deep Learning

Beyond classical ML — neural networks, computer vision, language, and generative AI.
  • Deep Learning Basics
  • Computer Vision
  • Natural Language Processing (NLP)
  • Generative AI & LLM Concepts

Capstone Project

Teams of 3–5 build a real AI solution from scratch — planning it, building it, deploying it, and presenting it live.
  • Domains to Explore 
  • Project Planning & Problem Definition
  • Model Development
  • Model Optimization & Deployment
  • Final Presentation & Demo Day

Who Should Enrol

AI & ML Foundations graduates continuing the pathway.

Anyone who already knows Python, statistics, and classical ML — and wants deep learning, deployment, and team capstone experience specifically.

What You Will Achieve

Outcomes

How You're Evaluated

Shipped the way real AI teams ship it, not the way a classroom does

Weeks 1–4 are hands-on from day one: deep learning, computer vision, NLP, and generative AI, built through labs and a mini project, not just watched in lectures. From week 5, you’re on a team of 3–5, building the capstone from scratch — planning it, building it, breaking it, fixing it. By Week 8, it’s live: deployed behind a real Streamlit or Flask interface on AWS or GCP, not a script running on your laptop. Then you defend it twice — a technical viva, and a live demo in front of industry evaluators on Demo Day.

Tools

TensorFlow

PyTorch

OpenCV

spaCy

Streamlit

Flask

AWS

Google Cloud

FAQs

Yes, if you’re already comfortable with Python, statistics, and classical ML.
Yes — a standalone certificate for this course alone.
Your capstone goes live behind a real interface (Streamlit or Flask) on AWS or GCP — not just a script that runs locally.

Ready to Build and Deploy Your Capstone?

Batches are kept small on purpose, so you get real time with mentors, not just a seat in a crowd. New batch starting soon.
Enquire today to hold your seat.

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