Data Scientist (Bengaluru)

Data Scientist (Bengaluru)

07 Aug
|
Razorthink
|
Bengaluru

07 Aug

Razorthink

Bengaluru

Join our Data & Analytics team to build and productionize ML/DL/NLP/GenAI solutions under the guidance of senior scientists. Youll work end-to-enddata prep, modeling, evaluation, deployment, and monitoringwhile learning best practices for quality, safety, and reliability.

What Youll Do

Modeling & Research

Train and evaluate models (classification, regression, text classification/NER, embeddings, LLM prompting/RAG basics).

Perform error analysis and A/B tests; document results and iterate quickly.

Data & Features

Explore and prepare structured/semi-structured/unstructured text using Python/SQL; ensure data quality and reproducibility.

Build reusable feature pipelines and prompt templates.

Production & MLOps

Package models as APIs/batch jobs with FastAPI/Flask and Docker; write unit/integration tests.

Add monitoring for accuracy/latency/drift; maintain experiment logs (MLflow/W&B;).

Collaboration & Communication

Work with product/engineering to define metrics and prioritize work; present findings to technical and non-technical audiences.

Minimum Qualifications

Bachelors/Masters in a quantitative field (CS, Data Science, Math, Stats, EE) or equivalent project/internship experience.





Proficient in Python and SQL; robust grasp of statistics and experimentation.

Hands-on ML with scikit-learn and introductory PyTorch/TensorFlow.

Basic NLP (tokenization, embeddings, Transformers familiarity) and exposure to LangChain or LangGraph.

Git, notebooks, and clear written/verbal communication.

Preferred (Nice to Have)

Projects/internships using RAG, vector databases (FAISS/Milvus/Pinecone), or LLM eval frameworks.

Data processing at scale (pandas/Polars; Spark/PySpark basics), orchestration (Airflow/Prefect).

Cloud familiarity (AWS/GCP/Azure), Docker, and simple API development (FastAPI).

Participation in hackathons/Kaggle/OSS or research publications.

Success Measures (First 90 Days)

Ship at least one ML/NLP or GenAI feature to staging/production with tests, docs, and monitoring.

Establish baseline metrics and an experiment log; close a set of scoped bugs/tech-debt items.

Tools & Tech You May Use

Python, SQL, scikit-learn, PyTorch/TensorFlow, Hugging Face, LangChain, LangGraph, vector stores, FastAPI, Git, Docker, MLflow/W&B;, Airflow/Prefect, cloud services (AWS/GCP/Azure).

📌 Data Scientist (Bengaluru)
🏢 Razorthink
📍 Bengaluru

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