AI/ML Developer

3 - 8 years

9 - 13 Lacs

Posted:21 hours ago| Platform: Naukri logo

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Job Type

Full Time

Job Description

Introduction to the Role:

AI & Machine Learning Engineering

In this role, you will collaborate with cross-functional teams including data engineers, product managers, MLOps engineers, and architects to design and implement production-grade AI solutions across domains. If you're looking to work at the intersection of deep learning, GenAI, cloud computing, and MLOps this is the role for you.

Accountabilities:

  • Design, develop, train, and deploy production-grade

    ML and GenAI models

    across use cases including NLP, computer vision, and structured data modeling.
  • Leverage frameworks such as

    TensorFlow

    ,

    Keras

    ,

    PyTorch

    , and

    LangChain

    to build scalable deep learning and LLM-based solutions.
  • Develop and maintain

    end-to-end ML pipelines

    with reusable, modular components for data ingestion, feature engineering, model training, and deployment.
  • Implement and manage models on

    cloud platforms

    such as

    AWS

    ,

    GCP

    , or

    Azure

    using services like

    SageMaker

    ,

    Vertex AI

    , or

    Azure ML

    .
  • Apply

    MLOps best practices

    using tools like

    MLflow

    ,

    Kubeflow

    ,

    Weights & Biases

    ,

    Airflow

    ,

    DVC

    , and

    Prefect

    to ensure scalable and reliable ML delivery.
  • Incorporate

    CI/CD pipelines

    (using Jenkins, GitHub Actions, or similar) to automate testing, packaging, and deployment of ML workloads.
  • Containerize applications using

    Docker

    and orchestrate scalable deployments via

    Kubernetes

    .
  • Integrate LLMs with APIs and external systems using LangChain, Vector Databases (e.g., FAISS, Pinecone), and prompt engineering best practices.
  • Collaborate closely with

    data engineers

    to access, prepare, and transform large-scale structured and unstructured datasets for ML pipelines.
  • Build monitoring and retraining workflows to ensure models remain performant and robust in production.
  • Evaluate and integrate

    third-party GenAI APIs or foundational models

    where appropriate to accelerate delivery.
  • Maintain rigorous experiment tracking, hyperparameter tuning, and model versioning.
  • Champion industry standards and evolving practices in

    ML lifecycle management

    ,

    cloud-native AI architectures

    , and responsible AI.
  • Work across global, multi-functional teams, including architects, principal engineers, and domain experts.

Essential Skills / Experience:

  • 3+ years

    of hands-on experience in developing, training, and deploying

    ML/DL/GenAI models

    .
  • Strong programming expertise in

    Python

    with proficiency in

    machine learning

    ,

    data manipulation

    , and

    scripting

    .
  • Demonstrated experience working with

    Generative AI

    models and

    Large Language Models (LLMs)

    such as GPT, LLaMA, Claude, or similar.
  • Hands-on experience with

    deep learning frameworks

    like

    TensorFlow

    ,

    Keras

    , or

    PyTorch

    .
  • Experience in

    LangChain

    or similar frameworks for LLM-based app orchestration.
  • Proven ability to implement and scale

    CI/CD pipelines

    for ML workflows using tools like

    Jenkins

    ,

    GitHub

    ,

    GitLab

    , or

    Bitbucket Pipelines

    .
  • Familiarity with

    containerization (Docker)

    and orchestration tools like

    Kubernetes

    .
  • Experience working with

    cloud platforms

    (AWS, Azure, GCP) and relevant AI/ML services such as

    SageMaker

    ,

    Vertex AI

    , or

    Azure ML Studio

    .
  • Knowledge of

    MLOps tools

    such as

    MLflow

    ,

    Kubeflow

    ,

    DVC

    ,

    Weights & Biases

    ,

    Airflow

    , and

    Prefect

    .
  • Strong understanding of

    data engineering concepts

    , including batch/streaming pipelines, data lakes, and real-time processing (e.g.,

    Kafka

    ).
  • Solid grasp of

    statistical modeling

    ,

    machine learning algorithms

    , and evaluation metrics.
  • Experience with

    version control systems

    (Git) and collaborative development workflows.
  • Ability to translate complex business needs into scalable ML architectures and systems.

Desirable Skills / Experience:

  • Working knowledge of

    vector databases

    (e.g.,

    FAISS

    ,

    Pinecone

    ,

    Weaviate

    ) and

    semantic search

    implementation.
  • Hands-on experience with

    prompt engineering

    , fine-tuning LLMs, or using techniques like

    LoRA

    ,

    PEFT

    ,

    RLHF

    .
  • Familiarity with

    data governance

    ,

    privacy

    , and responsible AI guidelines (bias detection, explainability, etc.).
  • Certifications in AWS, Azure, GCP, or ML/AI specializations.
  • Experience in high-compliance industries like

    pharma

    ,

    banking

    , or

    healthcare

    .
  • Familiarity with agile methodologies and working in iterative, sprint-based teams.

Work Environment & Collaboration:

You will be a key member of an agile, forward-thinking AI/ML team that values curiosity, excellence, and impact. Our hybrid work culture promotes flexibility while encouraging regular in-person collaboration to foster innovation and team synergy. You'll have access to the latest technologies, mentorship, and continuous learning opportunities through hands-on projects and professional development resources.





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