Padmi

AI/ML Engineer (35 Years Experience)

IndiaPosted 2 months ago
Software engineeringMid-levelFull Time; Regular
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We are seeking a talented and motivated AI/ML Engineer with 3 to 5 years of professional experience to join our growing engineering team. In this role, you will bridge the gap between data science and production engineering. You will be responsible for designing, building, deploying, and maintaining scalable machine learning models and pipelines that power our core products. The ideal candidate has a strong software engineering foundation, a deep understanding of ML/DL algorithms, and hands-on experience moving models from experimental notebooks into high-performance production environments. Key ResponsibilitiesModel Development & Engineering Design, develop, and train robust machine learning and deep learning models to solve complex business problems. Optimize and fine-tune existing models and architectures for improved accuracy, speed, and resource efficiency. Implement state-of-the-art algorithms in areas such as Natural Language Processing (NLP), Computer Vision, or Predictive Analytics based on project needs. MLOps & Pipeline Architecture Build, maintain, and automate end-to-end data and ML pipelines (data ingestion, preprocessing, training, evaluation, and deployment). Deploy ML models as scalable APIs or microservices within containerized environments. Monitor production model performance, implement logging, and set up automated retraining loops to handle data drift. Collaboration & Software Best Practices Collaborate closely with Data Scientists, Data Engineers, and Product Managers to translate business requirements into technical solutions. Write clean, maintainable, well-documented, and production-ready code. Participate in code reviews, mentoring junior engineers, and championing software engineering best practices (CI/CD, testing, version control). Required Technical Skills & Qualifications Experience: 35 years of professional experience as an AI/ML Engineer, Software Engineer (focused on ML), or Data Engineer in a production environment. Education: Bachelors or Masters degree in Computer Science, Data Science, Statistics, Mathematics, or a related technical field. Programming: Mastery of Python and familiarity with standard libraries (NumPy, Pandas, Scikit-Learn). Knowledge of C or Java is a plus. Frameworks: Deep hands-on experience with modern deep learning frameworks, specifically PyTorch or TensorFlow. MLOps & Tools: Proficient with MLOps tools (e.g., MLflow, Kubeflow, Weights & Biases) and workflow orchestration (e.g., Airflow). Cloud & DevOps: Strong experience with cloud platforms (AWS, GCP, or Azure) and containerization technologies (Docker, Kubernetes). Data Architecture: Solid understanding of SQL and NoSQL databases, as well as big data processing tools (e.g., Spark). Preferred Qualifications Experience with Large Language Models (LLMs), prompt engineering, and fine-tuning (e.g., Hugging Face ecosystem, LangChain, vector databases like Pinecone/Milvus). Familiarity with edge AI deployment and model quantization techniques (e.g., TensorRT, ONNX). Contributions to open-source AI/ML projects or a strong portfolio on GitHub. We are seeking a talented and motivated AI/ML Engineer with 3 to 5 years of professional experience to join our growing engineering team. In this role, you will bridge the gap between data science and production engineering. You will be responsible for designing, building, deploying, and maintaining scalable machine learning models and pipelines that power our core products. The ideal candidate has a strong software engineering foundation, a deep understanding of ML/DL algorithms, and hands-on experience moving models from experimental notebooks into high-performance production environments. Key ResponsibilitiesModel Development & Engineering Design, develop, and train robust machine learning and deep learning models to solve complex business problems. Optimize and fine-tune existing models and architectures for improved accuracy, speed, and resource efficiency. Implement state-of-the-art algorithms in areas such as Natural Language Processing (NLP), Computer Vision, or Predictive Analytics based on project needs. MLOps & Pipeline Architecture Build, maintain, and automate end-to-end data and ML pipelines (data ingestion, preprocessing, training, evaluation, and deployment). Deploy ML models as scalable APIs or microservices within containerized environments. Monitor production model performance, implement logging, and set up automated retraining loops to handle data drift. Collaboration & Software Best Practices Collaborate closely with Data Scientists, Data Engineers, and Product Managers to translate business requirements into technical solutions. Write clean, maintainable, well-documented, and production-ready code. Participate in code reviews, mentoring junior engineers, and championing software engineering best practices (CI/CD, testing, version control). Required Technical Skills & Qualifications

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AI/ML Engineer (35 Years Experience) at Cydez Technologies · Padmi