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Hi, I'm Rahul

MLOps Engineer | Building Scalable & Production-Ready AI Systems


🚀 About Me

  • 🛠️ MLOps Engineer passionate about automating and scaling machine learning solutions.
  • 🧠 Data Scientist experienced in Machine Learning, Deep Learning, NLP, and Computer Vision.
  • ☁️ Skilled in Cloud Deployments (AWS EC2, S3, EKS, ECR) and CI/CD Automation (GitHub Actions).
  • 🛡️ Focused on building production-grade, maintainable, and scalable AI systems.

🚀 Core Expertise

  • 🔹 End-to-End MLOps Pipelines
  • 🔹 Machine Learning and Deep Learning Solutions
  • 🔹 Natural Language Processing (NLP) and Computer Vision
  • 🔹 Experiment Tracking (MLflow), Model Versioning (DVC), Model Registry
  • 🔹 CI/CD Automation (GitHub Actions)
  • 🔹 Docker, Kubernetes (AWS EKS) Deployment
  • 🔹 AWS Cloud Services (EC2, EKS, S3, ECR, IAM)
  • 🔹 Monitoring and Observability (Prometheus, Grafana)
  • 🔹 Scalable ML Systems Architecture

💻 Tech Stack & Tools

  • 🐍 Python | SQL | Bash | Linux
  • 🧪 MLflow | DVC | Airflow
  • 📦 Docker | Kubernetes (AWS EKS)
  • ☁️ AWS (SageMaker, Lambda, CloudWatch, S3, EC2, ECR, IAM, EKS)
  • ⚙️ Git | GitHub Actions | CI/CD Pipelines
  • 🛠️ Prometheus | Grafana

🏆 Featured Projects

🧠 MLOps NLP Capstone Project

  • Built a production-ready NLP MLOps pipeline for sentiment analysis.
  • Integrated DVC for data versioning, MLflow for experiment tracking.
  • Deployed as a Dockerized microservice on AWS EKS with CI/CD via GitHub Actions.
  • Real-time monitoring and alerting with Prometheus and Grafana.

🔗 View Project Repository


🚗 MLOps Vehicle Insurance Prediction Pipeline

  • Developed an end-to-end MLOps solution to predict vehicle insurance responses.
  • Achieved a 23.5% improvement in F1-score through model optimization.
  • Deployed pipelines on AWS, utilizing Docker, CI/CD workflows, and MongoDB.

🔗 View Project Repository


🛂 US Visa Approval Prediction (MLOps)

  • Engineered a scalable machine learning pipeline for visa approval prediction.
  • Achieved 95% model accuracy, deployed with Dockerized CI/CD workflows.
  • Data storage and retrieval managed via MongoDB.

🔗 View Project Repository


🍔 Food Delivery Time Prediction ML Pipeline

  • Designed a modular ML pipeline to predict food delivery times.
  • Implemented advanced regression models including XGBoost and Random Forest.
  • Ensured robust data validation, logging, and custom exception handling.

🔗 View Project Repository


📫 Let's Connect

👋 I’m open to collaborations, freelance opportunities, or full-time roles in MLOps & AI Engineering. Feel free to connect or drop a message!:
📧 Email: [email protected]


Building in public. Learning every day. Let’s connect! 🚀

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