Data Scientist II

Posted 2 Days Ago
Be an Early Applicant
2 Locations
In-Office or Remote
Mid level
Aerospace • Security • Energy • Industrial
The Role
The Data Scientist II will analyze data, build models, and support deployment, focusing on machine learning and NLP, collaborating with cross-functional teams.
Summary Generated by Built In

Job Description

Data Scientist (3–6 Years Experience)

Location

Bangalore, India (Hybrid / Remote as applicable)

Role Overview

We are looking for a Data Scientist with strong analytical and machine learning skills to work on data‑driven problem solving and model development.
The role focuses on hands‑on analysis, model building, and deployment support, working closely with senior data scientists, engineers, and product teams.

You will contribute to building scalable ML solutions and help convert business problems into data science use cases.

Responsibilities

Key Responsibilities

Data Analysis & Exploration

  • Perform exploratory data analysis (EDA) on structured and semi‑structured data
  • Clean, preprocess, and transform large datasets
  • Create clear visualizations and insights for stakeholders
  • Write efficient and readable SQL queries for analysis and reporting
 

NLP & GenAI (Exposure Preferred)

  • Work on NLP tasks such as text classification, similarity, and entity extraction
  • Use pre‑trained models from Hugging Face or cloud APIs
  • Assist in building LLM‑based applications (prompt engineering, simple RAG pipelines)
  • Evaluate outputs for quality, relevance, and bias
 

Data Engineering & Pipelines (Good to Have)

  • Consume data from data warehouses and data lakes
  • Build or modify batch data pipelines using Spark or Python
  • Assist with workflow orchestration using Airflow / Prefect
  • Understand basic streaming concepts (Kafka exposure is a plus)
 

Model Deployment & MLOps (Optional)

  • Package models for deployment with guidance from senior team members
  • Support model deployment using REST APIs (FastAPI or similar)
  • Track experiments, metrics, and models using tools like MLflow
  • Monitor basic model performance and data quality post‑deployment
 

Collaboration & Learning

  • Work closely with product managers, analysts, and engineers
  • Clearly communicate findings and recommendations
  • Participate in code reviews and team discussions
  • Continuously learn and apply new tools and techniques
 

Required Skills & Qualifications

Technical Skills

  • Strong proficiency in Python (pandas, numpy, scikit‑learn)
  • Good knowledge of SQL (joins, aggregations, subqueries)
  • Solid understanding of: 
    • Statistics & probability
    • Linear regression, classification models
  • Experience with machine learning libraries 
    • scikit‑learn
    • XGBoost / LightGBM (preferred)
 

Data & ML Tools

  • Experience with Jupyter notebooks
  • Familiarity with Spark / PySpark (hands‑on or project experience)
  • Basic experience with MLflow or similar experiment tracking tools
  • Version control using Git
 

Cloud & Platforms

  • Working knowledge of at least one cloud platform: 
    • AWS / Azure / GCP
  • Experience querying data from: 
    • Snowflake / BigQuery / Redshift (or similar)
  • Basic understanding of data lakes and warehouses
 

Preferred / Nice‑to‑Have

  • Exposure to PyTorch or TensorFlow
  • Experience with NLP or GenAI projects
  • Familiarity with Docker
  • Understanding of basic data engineering concepts
  • Experience working in agile teams

 

Machine Learning Algorithms & Techniques (Hands‑On)

Supervised Learning

  • Linear Models 
    • Linear Regression
    • Logistic Regression
    • Regularization (L1, L2, Elastic Net)
  • Tree‑Based Models 
    • Decision Trees
    • Random Forest
    • Gradient Boosting (XGBoost, LightGBM, CatBoost)
  • Clustering Techniques 
    • K‑Means
    • Hierarchical Clustering
    • DBSCAN
    • PCA (feature reduction)
    • t‑SNE / UMAP (visualization & analysis)

Dimensionality Reduction 

 

Time Series & Forecasting (Basic–Intermediate)

  • Statistical forecasting: 
    • Moving averages
    • ARIMA / SARIMA (conceptual + basic use)
  • ML‑based forecasting using regression and tree‑based models

 

Model Evaluation & Optimization

  • Cross‑validation techniques
  • Hyperparameter tuning (Grid Search, Random Search)
  • Bias–variance tradeoff
  • Handling class imbalance
  • Selection of appropriate evaluation metrics
Qualifications

Experience

3–6 years of relevant industry experience

About UsHoneywell helps organizations solve the world's most complex challenges in automation, the future of aviation and energy transition. As a trusted partner, we provide actionable solutions and innovation through our Aerospace Technologies, Building Automation, Energy and Sustainability Solutions, and Industrial Automation business segments – powered by our Honeywell Forge software – that help make the world smarter, safer and more sustainable.

Top Skills

AWS
Azure
Docker
GCP
Jupyter Notebooks
Mlflow
Pyspark
Python
Spark
SQL
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The Company
HQ: Charlotte, NC
110,269 Employees
Year Founded: 1906

What We Do

Honeywell is a Fortune 500 company that invents and manufactures technologies to address tough challenges linked to global macrotrends such as safety, security, and energy. With approximately 110,000 employees worldwide, including more than 19,000 engineers and scientists, we have an unrelenting focus on quality, delivery, value, and technology in everything we make and do.

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