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Job Description
About the Role
Were looking for a mid-level Machine Learning Engineer to join our team and help build, deploy, and scale ML solutions that drive real impact. Youll work on the full ML lifecyclefrom problem formulation and experimentation to production deployment and monitoring. This role is ideal for someone who has moved beyond the basics and is ready to own projects while continuing to grow their expertise.
What Youll Do
Youll design and implement machine learning models to solve business problems, working closely with data scientists, software engineers, and product teams. Your responsibilities will include building data pipelines, training and evaluating models, deploying them to production environments, and monitoring their performance over time. Youll be responsible for hosting and serving open-source models at scale, optimizing inference performance, and fine-tuning models for specific use cases. Youll contribute to our ML infrastructure, help establish best practices, and mentor junior team members. We expect you to balance moves quickly with building robust, maintainable systems.
What Were Looking For
- experience working with machine learning in production environments
- Strong proficiency in Python and ML frameworks like TensorFlow, PyTorch, or scikit-learn
- Solid understanding of fundamental ML concepts including supervised and unsupervised learning, model evaluation, and feature engineering
- Hands-on experience hosting and serving open-source language models at scale
- Familiarity with inference optimization frameworks like vLLM, TGI (Text Generation Inference), or similar tools
- Experience fine-tuning models using techniques like LoRA, QLoRA, or full fine-tuning, with understanding of the tradeoffs involved
- Proficiency with FastAPI or similar frameworks for building ML APIs
- Strong experience with Docker for containerization and deployment
- Proficiency with data processing tools and cloud platforms (AWS, GCP, or Azure)
- Track record of deploying models to production and handling real-world challenges like latency optimization, throughput management, and model degradation
- Strong communication skills to explain technical concepts to non-technical stakeholders and collaborate effectively across teams
Nice to Have
Experience with Kubernetes for orchestration and scaling, other inference frameworks (TensorRT-LLM, DeepSpeed, Ray Serve), knowledge of model quantization techniques (GPTQ, AWQ, bitsandbytes), familiarity with distributed training frameworks, experience with vector databases and RAG architectures, contributions to open-source ML projects, or experience with MLOps tools and practices would all be valuable additions.
Skills
PythonData ProcessingMachine LearningMlData ScientistIf a job posting appears fraudulent, asks for payment, contains misleading information, or violates our guidelines, please report it immediately. Our team will review it promptly, Jobaaj does not charge any fee from the applicants.
About Company
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Important dates & deadlines?
Application Deadline
19 Jul 26, 01:30 PM IST
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