ML Engineer

Posted 2 Days Ago
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Pune, Maharashtra, IND
In-Office
Mid level
Artificial Intelligence • Software • Analytics • Business Intelligence
The Role
Build, train, evaluate, and operationalize machine learning models for Rubiscape’s AutoML and MLOps platform. Responsibilities include feature engineering, data quality collaboration, MLflow-based experiment tracking and model versioning, production deployment, and monitoring for drift, bias, and performance degradation. The role requires production-quality Python development and collaboration across data and platform engineering teams, with opportunities to prototype applied machine learning approaches.
Summary Generated by Built In
About the Role

As an ML Engineer at Rubiscape, you will build and operationalise machine learning models that power RubiStudio — our AutoML and MLOps studio trusted by Fortune 500 enterprises. You will work at the intersection of data engineering, feature design, and model training, turning raw enterprise data into production-grade predictive intelligence at scale. This role is central to Rubiscape’s mission of compressing the time from raw data to first production use case to under 90 days.

 

Key Responsibilities

·         Design, train, and evaluate supervised and unsupervised ML models across BFSI, manufacturing, and healthcare verticals using Python, scikit-learn, and PyTorch.

·         Build and maintain feature engineering pipelines integrated with Rubiscape’s internal Feature Store, ensuring consistency between training and inference environments.

·         Collaborate with data engineers on RubiFlow to define feature contracts and manage data quality upstream of model training.

·         Integrate trained models into RubiStudio’s model registry and automate versioning, lineage capture, and metadata tagging via MLflow.

·         Profile model performance across data slices; diagnose drift, bias, and degradation using monitoring hooks connected to RubiSight dashboards.

·         Write clean, type-annotated Python code that meets production standards and can be reviewed, tested, and deployed by the platform engineering team.

·         Participate in quarterly Innovation Lab collaborations with Rubiscape’s 10 Industry-Academia COEs to prototype novel modelling approaches.

Nice to Have

·         Hands-on experience with AutoML frameworks (Auto-sklearn, FLAML, or similar) and their integration into governed ML platforms.

·         Exposure to regulated-sector modelling requirements such as model explainability under RBI or IRDAI guidelines.

·         Familiarity with Rubiscape or comparable unified analytics platforms (Databricks, Dataiku, or SageMaker Studio).

·         Published research or patents in applied machine learning.

 

 

 

About Rubiscape

Rubiscape is India’s leading Decision Intelligence Platform, unifying data engineering, BI, machine learning, and agentic AI in a single governed platform. Built in Pune and trusted by Fortune 500 enterprises across BFSI, manufacturing, healthcare, and government. 8 international innovation patents. 10 Industry-Academia Labs & COEs. From BI to AI — One Platform. Every Decision.



RequirementsRequirements

·         3+ years of hands-on ML engineering experience in a product or enterprise software environment.

·         Strong proficiency in Python with scikit-learn, XGBoost/LightGBM, and at least one deep learning framework (PyTorch preferred).

·         Practical experience with experiment tracking (MLflow or equivalent) and a structured approach to model versioning.

·         Solid understanding of feature engineering for tabular data, time-series, and event-based datasets common in enterprise analytics.

·         Experience deploying models as REST APIs or batch inference jobs in cloud or on-premises environments (AWS, Azure, or GCP).

·         Bachelor’s or Master’s degree in Computer Science, Statistics, Mathematics, or a related quantitative discipline.



Skills Required

  • 3+ years of hands-on machine learning engineering experience in a product or enterprise software environment
  • Strong proficiency in Python
  • Experience with scikit-learn, XGBoost or LightGBM, and at least one deep learning framework, preferably PyTorch
  • Practical experience with experiment tracking using MLflow or an equivalent tool
  • Experience with structured model versioning
  • Understanding of feature engineering for tabular, time-series, and event-based datasets
  • Experience deploying models as REST APIs or batch inference jobs
  • Experience deploying models in cloud or on-premises environments using AWS, Azure, or GCP
  • Bachelor’s or Master’s degree in Computer Science, Statistics, Mathematics, or a related quantitative discipline
  • Hands-on experience with AutoML frameworks such as Auto-sklearn or FLAML
  • Exposure to regulated-sector modeling requirements, including RBI or IRDAI explainability guidelines
  • Familiarity with Rubiscape or comparable unified analytics platforms such as Databricks, Dataiku, or SageMaker Studio
  • Published research or patents in applied machine learning
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The Company
30 Employees
Year Founded: 2018

What We Do

Rubiscape is a decision intelligence platform that unifies business intelligence, analytics, data science, and artificial intelligence in one place, helping organizations move from BI to AI. Its technology and product-development work spans AI-focused development, software engineering, product management, agile delivery, security operations, and DevOps, reflecting a software platform mission centered on enabling data-driven decisions across modern organizations.

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