AI/ML Engineer
Kreeda Labs
5 - 4 years
Pune
Posted: 17/12/2025
Job Description
Job Role: AI/ML Engineer
Job Type: Permanent Full time
Location: Pune (Hybrid)
Notice Period: Immediate Joiners
Experience: 1.5 - 4 years
Job Description:
We are seeking a highly skilled AI/ML Engineer with strong hands-on experience in Machine Learning, Deep Learning, and advanced GenAI solution development. The ideal candidate has built end-to-end ML/DL models, implemented GenAI systems (RAG, LLM orchestration), and deployed solutions at scale on cloud platforms.
This role involves applying in-depth engineering principles, building scalable AI systems, experimenting with new GenAI technologies, and taking complete ownership of AI-driven initiatives.
- Design, build, and deploy end-to-end ML and DL models for production use cases.
- Develop advanced GenAI solutions using Lang Chain, Lang Graph, Llama Index, vector databases (FAISS, Pinecone, Weaviate, etc.), and RAG-based architectures.
- Create Agentic AI workflows to automate reasoning and task execution.
- Build cloud-native AI pipelines (AWS/GCP/Azure), including model training, optimization, deployment, and monitoring.
- Work hands-on with data sourcing, cleaning, preprocessing, and feature engineering.
- Develop backend components to integrate AI models with microservices and production systems.
- Rapidly prototype GenAI and ML features and convert research into deployable systems.
- Collaborate with engineering, product, and client teams to deliver reliable AI solutions.
- Continuously explore emerging ML/DL and GenAI technologies to improve internal capabilities.
- 24 years hands-on experience in Machine Learning and Deep Learning projects.
- Proven track record of building and deploying ML/DL models in real-world applications.
- Strong expertise in GenAI ecosystems:
Lang Chain
Lang Graph
RAG pipelines
Vector databases
Agentic AI workflows
- In-depth experience with Python, NumPy, Pandas, Scikit-learn, Py Torch or Tensor Flow
- Understanding of Transformers, LLMs, embeddings, and fine-tuning techniques.
- Solid knowledge of ML Ops practices (training pipelines, versioning, CI/CD for ML).
- Experience with Snowflake or similar data platforms.
- Advanced Computer Vision model development.
- Cloud deployment expertise (AWS/GCP/Azure).
- Strong mathematical foundation: statistics, linear algebra, optimization.
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