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Accelya

Data Science Engineer II – Machine Learning (Python / AWS)

Posted 7 Days Ago
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In-Office
Pune, Mahārāshtra
Mid level
In-Office
Pune, Mahārāshtra
Mid level
As a Data Science Engineer, you'll build data-driven models for operational decisions, integrating them into production and ensuring data quality for FLX ONE Cargo.
The summary above was generated by AI

For more than 40 years, Accelya has been the industry’s partner for change, simplifying airline financial and commercial processes and empowering the air transport community to take better control of the future. Whether partnering with IATA on industry-wide initiatives or enabling digital transformation to simplify airline processes, Accelya drives the airline industry forward and proudly puts control back in the hands of airlines so they can move further, faster. 

Data Science Engineer (SDE II) – Software Development (Pune)

Location: Pune, India

Reporting to: Senior Manager – Software Development, FLX ONE Cargo

Functional Alignment: Central AI & Data organisation (dotted line)

About Accelya

Accelya is a global leader in airline software, supporting over 200 airlines worldwide with an open, modular platform that enables modern airline retailing. The FLX ONE platform supports airlines across Offer, Order, Settlement, and Delivery (OOSD), aligned with IATA standards for modern retailing. Built on a cloud-native AWS infrastructure and backed by more than 40 years of airline industry expertise, Accelya helps airlines modernise operations, improve customer experience, and scale with confidence.

Role Context

As a Data Science Engineer, you will focus on building data-driven intelligence that informs decisions across FLX ONE Cargo. This role sits at the intersection of data science and software engineering—designing models and analytics that are not only accurate, but deployable, observable, and useful in production.

You will work closely with product, engineering, and AI teams to turn raw operational and commercial data into predictive insights and decision-support capabilities that improve cargo outcomes.

What You’ll Own

Model Development & Analytics

  • Design, implement, and validate machine learning and statistical models to support pricing, capacity planning, forecasting, and operational decisions.
     
  • Translate business and operational questions into measurable data problems.
     
  • Continuously evaluate and improve model performance using real-world data.
     

Production Integration

  • Work with engineers to integrate data science models into production services via clean APIs.
     
  • Ensure models are versioned, testable, and suitable for cloud-native deployment.
     
  • Support incremental rollout and safe adoption of data-driven capabilities.
     

Data Engineering & Quality

  • Work with structured and semi-structured datasets from multiple internal and external sources.
     
  • Ensure data pipelines, features, and datasets are reliable, traceable, and well-understood.
     
  • Contribute to data quality checks and monitoring.
     

Measurement & Validation

  • Define evaluation frameworks, experiments, and success metrics for models and analytics.
     
  • Support A/B testing or controlled rollouts where appropriate.
     
  • Communicate results and trade-offs clearly to technical and non-technical stakeholders.
     

Collaboration

  • Collaborate closely with AI Engineers to align modelling approaches with AI-enabled capabilities.
     
  • Partner with Product and Engineering to ensure insights translate into real platform value.
     
  • Participate in reviews and discussions that shape how data is used across Cargo.
     

What You Must Bring

  • 3–5 years of experience in data science, machine learning, or data-focused software engineering roles.
     
  • Strong proficiency in Python and common data science libraries (e.g. pandas, scikit-learn, NumPy).
     
  • Experience building predictive or analytical models and taking them into production.
     
  • Working knowledge of SQL and experience working with cloud-based data stores.
     
  • Strong analytical thinking and ability to explain complex results clearly.
     

Nice to Have

  • Exposure to MLOps practices, such as model packaging, versioning, deployment, monitoring, or lifecycle management in production environments.
     
  • Experience working with cloud-native data and ML stacks on AWS (e.g. S3, Athena, Redshift, DynamoDB, SageMaker, or equivalent services).
     
  • Familiarity with experiment tracking, evaluation, and reproducibility (e.g. MLflow or similar concepts/tools).
     
  • Experience integrating models into production systems via APIs or batch pipelines in collaboration with software engineers.
     
  • Exposure to large-scale data processing or analytics frameworks (e.g. Spark, Databricks, or similar).
     
  • Experience in airline, logistics, or other operationally complex, data-rich domains.
     

Why This Role Matters

Data Science Engineers ensure that FLX ONE Cargo makes better decisions at scale. By turning data into actionable insights and embedding them into the platform, this role directly improves efficiency, reliability, and commercial outcomes.

What does the future of the air transport industry look like to you? Whether you’re an industry veteran or someone with experience from other industries, we want to make your ambitions a reality!

Top Skills

Athena
AWS
DynamoDB
Numpy
Pandas
Python
Redshift
S3
Sagemaker
Scikit-Learn
SQL

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