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AI/ML Engineer

AI/ML Engineer

First Career Centre
5-9 Years
18 - 20.5 LPA
Early Applicant
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  • Posted 2 days ago
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Job Description

Job Description


Role Summary

The Senior Associate AI/ML Engineer designs, builds, and deploys production-grade machine learning and multimodal AI solutions that operate across text, image, audio, and video data. The role focuses on transforming unstructured and semi-structured data into scalable AI services that power search, recommendations, automation, analytics, and content intelligence use cases.


This engineer owns model development, pipeline implementation, optimization, and deployment, while contributing to MLOps practices and mentoring junior team members.


Key Responsibilities

1. Model & Pipeline Development

      Build and deploy multimodal ML models across:

o  Natural Language Processing (NLP)

o  Computer Vision (CV)

o  OCR and document understanding

      Develop robust pipelines for:

o  Text processing, entity extraction, and classification

o  Image tagging, moderation, and visual understanding

o  Speech-to-text and speaker-level analysis

      Implement Retrieval-Augmented Generation (RAG) pipelines with text and multimodal indexing.


2. Optimization & Performance Engineering

      Optimize model inference for latency, throughput, and cost efficiency across batch and near real-time workloads.

      Apply optimization techniques including:

o  Batching and asynchronous inference

o  Quantization, pruning, or distillation

o  GPU and accelerator utilization tuning

      Analyze and troubleshoot model performance in production environments.


3. MLOps, LLMOps & Deployment

      Build and maintain CI/CD pipelines for ML workloads using:

o  GitHub Actions, Azure DevOps, or Jenkins

      Deploy models as cloud-native microservices, leveraging:

o  Docker, Kubernetes (AKS) and FastAPI

      Use Azure Machine Learning for:

o  Experiment tracking

o  Model registry

o  Training pipelines and deployment

      Implement monitoring and observability for models and pipelines:

o  Metrics, logging, alerts, and drift detection (e.g., Prometheus, Grafana)


4. Application & Platform Integration

      Integrate AI capabilities into enterprise applications such as:

o  Search and recommendation systems

o  Knowledge, document, or content platforms

o  Auto-tagging, summarization, transcription, and moderation workflows

      Design and expose inference and retrieval APIs for downstream consumption.

      Collaborate with backend, data, and platform teams to ensure scalable and secure AI integrations.


5. Collaboration & Mentorship

      Partner with product managers, data scientists, and engineers to translate business requirements into deployable AI solutions.

      Review code, promote best practices, and mentor junior engineers.

      Contribute to reusable components, documentation, and engineering standards.

       

Required Skills & Expertise

Core Technical Skills

      Strong proficiency in Python with PyTorch and/or TensorFlow.

      Hands-on experience with:

o  NLP, computer vision or speech models

      Working knowledge of LLM and orchestration frameworks:

o  LangChain, LlamaIndex or equivalent

      Experience with vector search and semantic retrieval:

o  FAISS, Pinecone, Weaviate, or Azure AI Search

      Solid understanding of Docker, Kubernetes, and CI/CD pipelines.


Preferred Skills

      Experience with Azure AI and ML ecosystem, including:

      Azure OpenAI

      Azure Data Lake or related data services

      Familiarity with real-time inference, streaming data, or distributed ML systems.


Qualifications

      35+ years of hands-on experience in ML engineering or applied AI roles.

      Bachelors degree in Computer Science, AI, Engineering, or related field.


Skill Set

NLP,Docker,Kubernetes

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