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Gen AI Engineer (Candidates with below exp. only must apply) Gurgaon

4 - 7 years

9 - 19 Lacs

Posted:7 hours ago| Platform: Naukri logo

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Job Type

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Job Description

Job Title: Python AI/ML Engineer

Location: Gurugram

Experience: 5 to 8 years

Job Summary:

We are looking for a passionate and skilled Python AI/ML Engineer who brings strong

expertise in building AI/ML solutions, productionizing models, and contributing to end-to-end ML

pipelines. The ideal candidate should possess deep knowledge of traditional and deep learning

concepts, hands-on programming capabilities, experience in enterprise-grade software

engineering, and a good understanding of MLOps practices.

Key Responsibilities:

  • Design, develop, and deploy scalable machine learning models for classification,

regression, NLP, and generative tasks.

  • Build and optimize data transformation workflows using Python and Pandas.
  • Lead AI/ML project pipelines from data ingestion to model deployment and monitoring.
  • Implement model observability, monitoring for drift, and continuous model evaluation.
  • Develop REST APIs and integrate ML models with production systems using

frameworks like FastAPI.

  • Participate in code reviews, write unit/integration tests, and ensure high code quality.
  • Collaborate with cross-functional teams including Data Engineers, DevOps, and Product

Managers.

  • Stay current with the latest developments in AI, GenAI, ML frameworks, and tools.

Use DevOps/MLOps tools to automate and manage model lifecycle processes.

Required Skills:

Programming & Python Ecosystem:

  • Advanced proficiency in Python, including libraries such as Pandas, NumPy, Scikit-learn,

TensorFlow/PyTorch.

  • Strong understanding of asynchronous programming, FastAPI, and concurrency

(Starlette).

  • Deep understanding of multithreading, multiprocessing, and the Python GIL.
  • Ability to write clean, efficient, and testable code.

Machine Learning & Deep Learning:

  • Solid grasp of traditional ML concepts: classification, regression, overfitting/underfitting,

regularization (L1/L2), multicollinearity.

  • Experience with deep learning: RNNs, attention mechanisms, dropout, early stopping,

loss functions (BCE, categorical cross entropy), diffusion models vs GANs.

  • Familiarity with transfer learning and pre-trained model fine-tuning.

MLOps:

  • Understanding of ML pipeline design including model training, deployment, and

monitoring.

  • Experience in detecting and mitigating data drift and concept drift.
  • Exposure to model observability, monitoring unstructured data drift, and automated drift

alerts.

Software Engineering & DevOps:

  • Strong skills in REST API development, integration testing, and CI/CD practices.
  • Experience with containerization tools like Docker.
  • Familiarity with cloud-based ML deployment (AWS/Azure) and logging frameworks.

Hands-On Problem Solving & Data Engineering:

  • Ability to perform data transformation and aggregation using Python/Pandas.

  • Experience handling dataframes, joins, ranking, filtering, mapping, and custom logic for

preprocessing tasks.

Nice-to-Have:

  • Experience in GenAI and working with LLMs.
  • Exposure to tools like MLflow, Kubeflow, Airflow, or similar MLOps platforms.
  • Understanding of NLP, embeddings, and transformer-based models.
  • Prior contributions to open-source ML tools or GitHub repositories.

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