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Senior Machine Learning Engineer @ Tredence

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 Senior Machine Learning Engineer

Job Description

We are looking for a Machine Learning Engineer with expertise in MLOps (Machine Learning Operations) and LLMOps (Large Language Model Operations) to design, deploy, and maintain scalable AI/ML systems. You will work on automating ML workflows, optimizing model deployment, and managing large-scale AI applications, including LLMs (Large Language Models), ensuring they run efficiently in production.

Key Responsibilities:

  • Design and implement end-to-end MLOps pipelines for training, validation, deployment, monitoring, and retraining of ML models.
  • Optimize and fine-tune large language models (LLMs) for various applications, ensuring performance and efficiency.
  • Develop CI/CD pipelines for ML models to automate deployment and monitoring in production.
  • Monitor model performance, detect drift, and implement automated retraining mechanisms.
  • Work with cloud platforms (AWS, GCP, Azure) and containerization technologies (Docker, Kubernetes) for scalable deployments.
  • Implement best practices in data engineering, feature stores, and model versioning.
  • Collaborate with data scientists, engineers, and product teams to integrate ML models into production applications.
  • Ensure compliance with security, privacy, and ethical AI standards in ML deployments.
  • Optimize inference performance and cost of LLMs using quantization, pruning, and distillation techniques.
  • Deploy LLM-based APIs and services, integrating them with real-time and batch processing pipelines.

Key Requirements:

Technical Skills:

  • Strong programming skills in Python, with experience in ML frameworks (TensorFlow, PyTorch, Hugging Face, JAX).
  • Experience with MLOps tools (MLflow, Kubeflow, Vertex AI, SageMaker, Airflow).
  • Deep understanding of LLM architectures, prompt engineering, and fine-tuning.
  • Hands-on experience with containerization (Docker, Kubernetes) and orchestration tools.
  • Proficiency in cloud services (AWS/GCP/Azure) for ML model training and deployment.
  • Experience with monitoring ML models (Prometheus, Grafana, Evidently AI).
  • Knowledge of feature stores (Feast, Tecton) and data pipelines (Kafka, Apache Beam).
  • Strong background in distributed computing (Spark, Ray, Dask).

Soft Skills:

  • Strong problem-solving and debugging skills.
  • Ability to work in cross-functional teams and communicate complex ML concepts to stakeholders.
  • Passion for staying updated with the latest ML and LLM research & technologies.

Preferred Qualifications:

  • Experience with LLM fine-tuning, Reinforcement Learning with Human Feedback (RLHF), or LoRA/PEFT techniques.
  • Knowledge of vector databases (FAISS, Pinecone, Weaviate) for retrieval-augmented generation (RAG).
  • Familiarity with LangChain, LlamaIndex, and other LLMOps-specific frameworks.
  • Experience deploying LLMs in production (ChatGPT, LLaMA, Falcon, Mistral, Claude, etc.).

Job Classification

Industry: IT Services & Consulting
Functional Area / Department: Data Science & Analytics
Role Category: Data Science & Machine Learning
Role: Machine Learning Engineer
Employement Type: Full time

Contact Details:

Company: Tredence
Location(s): Hyderabad

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Keyskills:   Azure Cloud GCP Deployment Machine Learning Data Bricks Python

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Tredence

We are a digital solutions and technology services company that partners with global organizations across industries to achieve digital transformation. With a strong track record of innovation, investment in digital solutions, and commitment to client success, at Zensar, you can help clients achieve...