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Software Engineer - MLOps (GenAI & LLM Focus)

Contract Type:

Brick and Mortar

Location:

Hyderabad - //TS

Date Published:

07-16-2025

Job ID:

REF30121Q

Company Description:

Sutherland is at the forefront of AI-driven innovation, specializing in  Generative AI (GenAI)  and  Large Language Models (LLMs). We build intelligent applications that transform industries by leveraging cutting-edge AI technologies. Join us to create tools that redefine developer productivity.

Job Description:

Role Overview

We are seeking a  Software Engineer with MLOps skills  to contribute to the deployment, automation, and monitoring of  GenAI and LLM-based applications. You will work closely with AI researchers, data engineers, and DevOps teams to ensure seamless integration, scalability, and reliability of AI systems in production.

Key Responsibilities

1. Deployment & Integration

  • Assist in deploying and optimizing  GenAI/LLM models  on cloud platforms (AWS SageMaker, Azure ML, GCP Vertex AI).
  • Integrate AI models with APIs, microservices, and enterprise applications for real-time use cases.

2. MLOps Pipeline Development

  • Contribute to building  CI/CD pipelines  for automated model training, evaluation, and deployment using tools like MLflow, Kubeflow, or TFX.
  • Implement model versioning, A/B testing, and rollback strategies.

3. Automation & Monitoring

  • Help automate model retraining, drift detection, and pipeline orchestration (Airflow, Prefect).
  • Assist in designing monitoring dashboards for model performance, data quality, and system health (Prometheus, Grafana).

4. Data Engineering Collaboration

  • Work with data engineers to preprocess and transform unstructured data (text, images) for LLM training/fine-tuning.
  • Support the maintenance of efficient data storage and retrieval systems (vector databases like Pinecone, Milvus).

5. Security & Compliance

  • Follow security best practices for MLOps workflows (model encryption, access controls).
  • Ensure compliance with data privacy regulations (GDPR, CCPA) and ethical AI standards.

6. Collaboration & Best Practices

  • Collaborate with cross-functional teams (AI researchers, DevOps, product) to align technical roadmaps.
  • Document MLOps processes and contribute to reusable templates.

 

    Qualifications:

    Technical Skills

    • Languages:  Proficiency in  Python  and familiarity with SQL/Bash.
    • ML Frameworks:  Basic knowledge of  PyTorch/TensorFlow, Hugging Face Transformers, or LangChain.
    • Cloud Platforms:  Experience with  AWS, Azure, or GCP  (e.g., SageMaker, Vertex AI).
    • MLOps Tools:  Exposure to  Docker, Kubernetes, MLflow, or Airflow.
    • Monitoring:  Familiarity with logging/monitoring tools (Prometheus, Grafana).

    Experience

    • 2+ years of software engineering experience with exposure to  MLOps/DevOps.
    • Hands-on experience deploying or maintaining  AI/ML models in production.
    • Understanding of  CI/CD pipelines  and infrastructure as code (IaC) principles.

    Education

    • Bachelor’s degree in  Computer Science, Data Science, or related field.

    Preferred Qualifications

    • Familiarity with  LLM deployment  (e.g., GPT, Claude, Llama) or  RAG systems.
    • Knowledge of  model optimization techniques  (quantization, LoRA).
    • Certifications in cloud platforms (AWS/Azure/GCP) or Kubernetes.
    • Contributions to open-source MLOps projects.

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