Data Scientist

Adesso SE

Pune District

On-site

INR 180,000 - 320,000

Full time

14 days+

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Job summary

adesso India seeks a Data Scientist with strong expertise in classical machine learning and predictive analytics to develop models for equipment manufacturing and industrial environments. You will transform manufacturing data into actionable insights and address industrial challenges like predictive maintenance and process optimization.

The role requires hands-on model building, feature engineering, and deploying scalable ML pipelines across production systems.

Qualifications

  • Strong expertise in classical machine learning and predictive analytics.
  • Experience building models from ground up and selecting algorithms based on business needs.
  • Ability to transform manufacturing data into actionable insights.

Responsibilities

  • Develop predictive models using classical ML techniques.
  • Design, train, validate, and deploy models with manufacturing data.
  • Analyze structured and time-series data from production equipment and systems.
  • Perform feature engineering, data exploration, and statistical analysis.
  • Build scalable preprocessing, training, and validation pipelines.
  • Evaluate algorithms based on business objectives and metrics.
  • Interpret outputs and communicate insights to stakeholders.
  • Collaborate with manufacturing and maintenance teams for data-driven improvements.
  • Deploy models to production and monitor performance.
  • Continuously improve model accuracy and scalability.

Skills

Classical ML
Time Series
Python
SQL
XGBoost
LightGBM
CatBoost
PCA
Statistical Analysis
Data Visualization

Tools

Docker
Cloud Platforms

Job description

Data Scientist – Classical Machine Learning (Equipment Manufacturing)
Experince : 7 years and above
About the Role

We are seeking a Data Scientist with strong expertise in classical machine learning and predictive analytics to develop custom models for equipment manufacturing and industrial environments. The ideal candidate will have hands- on experience building machine learning models from the ground up, selecting the most suitable algorithms based on business needs, and transforming manufacturing data into actionable insights.

This role focuses on addressing real-world industrial challenges, including equipment failure prediction, quality forecasting, demand forecasting, process optimization, predictive maintenance, and production efficiency enhancement.

Key Responsibilities
  • Develop predictive models using classical machine learning techniques.
  • Design, train, validate, and deploy machine learning models using manufacturing and operational data.
  • Analyze structured and time-series data from production equipment, sensors, ERP systems, MES platforms, and quality management systems.
  • Perform feature engineering, data exploration, and statistical analysis.
  • Build scalable data preprocessing, model training, and validation pipelines.
  • Evaluate multiple algorithms and identify the most effective solutions based on business objectives and performance metrics.
  • Interpret model outputs and communicate insights to engineering, operations, and business stakeholders.
  • Collaborate with manufacturing, process engineering, quality assurance, and maintenance teams to understand operational challenges and identify opportunities for data-driven improvements.
  • Deploy machine learning models into production environments and monitor model performance.
  • Continuously improve model accuracy, reliability, and scalability.
Required Technical Skills

Strong understanding and practical experience with classical machine learning algorithms, including:

  • Logistic Regression
  • Decision Trees
  • XGBoost
  • LightGBM
  • CatBoost
  • Clustering Techniques (K-Means, DBSCAN, Hierarchical Clustering)
  • Principal Component Analysis (PCA) and Dimensionality Reduction
  • Anomaly Detection Techniques
YOUR PROFILE

Statistical Knowledge

  • Hypothesis Testing
  • Probability
  • Statistical Modeling
  • Regression Analysis
  • Confidence Intervals
  • Time Series Analysis

Programming

  • Python
  • SQL
  • NumPy
  • SciPy
  • XGBoost
  • LightGBM
  • CatBoost
  • Matplotlib
  • Seaborn
  • Data Cleaning
  • Data Integration
  • Data Validation

Manufacturing Domain Knowledge (Preferred) Experience with:

  • Industrial Manufacturing
  • Equipment Manufacturing
  • Automotive
  • Heavy Engineering
  • Process Manufacturing
  • Factory Automation

Understanding of:

  • Production KPIs
  • OEE
  • Downtime Analysis
  • MES
  • ERP
  • SCADA
  • PLC Data
  • Sensor Data
  • IIoT

Model Development Expectations Candidates should demonstrate the ability to:

  • Select appropriate algorithms based on business problems.
  • Build machine learning models from scratch using Python.
  • Engineer meaningful features from manufacturing datasets.
  • Optimize hyperparameters.
  • Evaluate models using appropriate metrics.
  • Deploy models into production.

Experience with AutoML tools alone is not sufficient.

Required Qualifications

  • Strong problem-solving and analytical skills.
  • Experience working with structured industrial datasets.
  • Excellent communication and stakeholder management skills.

Preferred Qualifications

  • Experience in predictive maintenance projects.
  • Experience with manufacturing analytics.
  • Knowledge of MLOps practices.
  • Familiarity with Docker and cloud platforms (AWS, Azure, or GCP).
  • Exposure to edge analytics or IoT-based machine learning.
  • Experience integrating ML models into enterprise applications.

Nice to Have

  • Knowledge of optimization techniques.
  • Survival Analysis and Remaining Useful Life (RUL) modeling.
  • Digital Twin concepts.
  • Knowledge of reliability engineering.
  • Experience working with streaming data.

Success Measures Within the first 6-12 months, the successful candidate should be able to:

  • Develop production-ready predictive models for equipment health, quality, or process optimization.
  • Improve prediction accuracy through feature engineering and model tuning.
  • Collaborate effectively with manufacturing and engineering teams to deliver measurable business outcomes.
  • Deploy and monitor machine learning solutions that support operational decision-making.

adesso India, 3B-2 Athulya, Third Floor, Wing B, SEZ, Infopark Phase 1, Cochin, Kerala 682042

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