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  • Jamia Hamdard University
  • New Delhi, Delhi, India
  • 14:59 (UTC -12:00)

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osamashabih6960/README.md

MasterHead

Hi πŸ‘‹, I'm Osama Shabih

AI/ML Engineer | DL β€’ CV β€’ NLP β€’ Gen-AI | MLOps & FastAPI Developer

Coding

avinraj01

  • πŸ”­ AI/ML Engineer with hands-on experience in Deep Learning, Computer Vision, NLP, and Generative AI. Skilled in building and deploying machine learning solutions using MLOps practices and FastAPI. Strong problem-solving abilities, continuously enhanced through DSA in Python and real-world AI projects**

  • 🌱 I’m currently learning Gen-AI

  • πŸ‘― - πŸ‘― Looking to collaborate on AI/ML projects, research-work, and Hack-A-Thons.

  • πŸ’¬ - πŸ’¬ Ask me about AI/ML, Deep Learning, NLP, Computer Vision, Gen-AI, and MLOps.

  • πŸ“« How to reach me OsamaShabih@st.jamiahamdard.ac.in

  • πŸ“„ Know about my experiences https://drive.google.com/file/d/1d46vvNGxWNr2mmUQhBpRVHfVpNQuHjeQ/view?usp=drive_link

Let's build something together! πŸ’»

www.linkedin.com/in/osama-shabih-0b922b28a Osama Shabih discord

Join My Community on Discord:

discord invite link

Tech Stack I Vibe With ⚑

πŸ“Š Data Science & Machine Learning Specialist

πŸ› οΈ Core Foundations & Analytics

πŸ€– Advanced Modeling & AI

πŸ—„οΈ Data Engineering & Automation


🧠 In-Depth Deep Learning & Neural Engineering Stack

Category Tools & Technologies
πŸš€ Neural Frameworks
πŸ‘οΈ Computer Vision YOLO (v8/v10), CNN Architectures, Image Segmentation, Object Tracking, OpenCV, Face Recognition
πŸ”€ Natural Language LLMs, Fine-tuning, spaCy, NLTK, BERT, GPT-based Models
⚑ Production & Scale
πŸ’» Core Languages

πŸ”¬ Technical Specialization

  • Neural Design: Custom CNN layers development, Weight initialization strategies, and Hyperparameter tuning.
  • Spatial Tracking: Real-time 3D landmark detection and coordinate mapping (Hand/Face/Body).
  • Optimization: Model Quantization and Pruning for edge deployment.
  • Data Engineering: Designing automated data pipelines using Selenium and BeautifulSoup for training custom models.

πŸ—οΈ MLOps & Cloud Engineering Specialist

Architecting Production-Ready AI Ecosystems

I bridge the gap between Data Science and Software Engineering by implementing robust MLOps practices. My focus is on creating reproducible, scalable, and automated pipelines that transform experimental models into reliable production services.


πŸ”„ End-to-End MLOps Pipeline

1. Orchestration & Workflow Management

  • Workflow Engines: Orchestrating complex ML DAGs using Apache Airflow and Kubeflow for seamless data-to-model transitions.
  • Metadata & Lineage: Using ZenML to create framework-agnostic pipelines and track data/model lineage.
  • Data Versioning: Implementing DVC with YAML configurations to ensure 100% reproducibility of datasets and experiments.

2. Containerization & Orchestration

  • Docker: Containerizing ML environments to eliminate "it works on my machine" issues.
  • Kubernetes (K8s): Managing distributed clusters for high-availability model serving and resource scaling.
  • Serverless AI: Deploying lightweight models using AWS Lambda for cost-efficient, event-driven inference.

3. CI/CD & GitOps

  • GitOps Mastery: Using ArgoCD for declarative continuous deployment on Kubernetes.
  • Automation: Building GitHub Actions pipelines for automated linting, testing, and container pushing.
  • Version Control: Expert use of Git & GitHub for collaborative development and code branching strategies.

4. Cloud, Monitoring & Observability

  • Cloud Infrastructure: Architecting scalable environments on AWS (EC2, S3, EKS).
  • Observability: Real-time system health tracking using Prometheus for metrics and Grafana for advanced visual dashboards.
  • REST APIs: Developing high-performance, asynchronous interfaces with FastAPI.

πŸ› οΈ The MLOps Stack

Category Tools & Technologies
Orchestration
Infrastructure
Deployment Serverless
Monitoring
Versioning DVC, YAML, Git/GitHub, MLflow

πŸš€ Advanced Deployment Strategies

I implement and manage industry-standard deployment patterns to ensure zero downtime and model reliability:

  • Blue-Green Deployment (Instant switch)
  • Canary Deployment (Incremental traffic)
  • A/B Testing (Statistical comparison)
  • Shadow Deployment (Real-world testing without impact)
  • Recreate Strategy | Rolling Updates | Multi-Region Deployment | Serverless Scaling

GenAI & Specialized Tools


aj01

Last Edited on: 10/04/2025

Pinned Loading

  1. Calculator-GUI-Application-using-Python- Calculator-GUI-Application-using-Python- Public

    Description: Develop a basic calculator that can perform four primary arithmetic operations: addition, subtraction, multiplication, and division

    1

  2. Redis-Machine-Learning-Project Redis-Machine-Learning-Project Public

    Python 1