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Remote role :: Direct Client :: Sr. Data Scientist with Airline Revenue Management (Min 10+year exp required) :: contract at Remote, Remote, USA
Email: sushil.k@mitsinfo.com
https://jobs.nvoids.com/job_details.jsp?id=2107469&uid=
From:

sushil,

mitsinfo

sushil.k@mitsinfo.com

Reply to:   sushil.k@mitsinfo.com

Hi  

Please share the resume on sushil.k@mitsinfo.com

Job:. Sr. Data Scientist with Airline Revenue Management (Min 10+year exp required)

Location: 100% Remote

Duration: 12
months contract

Top Skills:

Airline Revenue Management experience is a must

Google Cloud (GCP) that is the preference but other cloud experience will work.

Programming- Python and C++

Data: PySpark

Experience with Rally and JIRA is good.

Job Description:

Description

SABRE CORPORATION is a leading technology provider to the global travel and tourism industry. Headquartered in Southlake, Texas, USA. we serve customers in more than 160 countries around the world. At Sabre, we make travel happen. Positioned at the center of the business of travel, our platform connects people with experiences that matter in their lives. Today, were creating a new marketplace for personalized travel. It is our people who develop and deliver powerful solutions that meet the current and future needs for our airline, hotel, and travel agency customers. Join our journey!

Airline industry is going through a drastic transformation in the area of retailing and distribution that requires very advance data analytics support to optimize revenue performance and customer experience. Recently introduced concepts of Offer/Order Management and Continuous Dynamic Pricing significantly expand opportunities for engaging with travelers through multiple touch points and creating personalized offers accounting for individual preferences and market context. These practices can substantially benefit from a combination of statistical and machine learning techniques leveraging huge volumes and variety of consumer and competitive data available in airline industry.
The Data Science Engineer applies expert level statistical analysis, data modeling, and predictive analysis on strategic and operational problems in airline industry. As a key member of the Sabre Operations Research team, you will leverage your statistical and business expertise to translate business questions into data analysis and models, define suitable KPIs, and graphically present results to a wide range of audiences including internal and external clients, sales, and development team. In addition, you will source data from multiple different data sources, write high-quality data manipulation scripts in R, Python, Perl, bash, etc, develop and ap-ply data mining and machine learning algorithms for advanced analysis and prediction. You will also utilize your strong communication skills to work with developers to support product development cycles and decision makers who need empirical data to promote sales and growth.

Responsibilities

Understanding of airline distribution, pricing, revenue management, NDC and Offer/Order Management concepts.

Work with subject matter experts from airlines to identify opportunities for leveraging data to deliver in-sights and actionable prediction of customer behavior and operations performance.
Assess the effectiveness and accuracy of new data sources, data gathering and forecasting techniques.
Develop custom data models and algorithms to apply to data sets and run proof of concept studies.
Leverage existing Statistical and Machine Learning tools to enhance in-house algorithms.
Collaborate with software engineers to implement and test production quality code for forecasting and data analytics models.
Develop processes and tools to monitor and analyze data accuracy and models performance.
Demonstrate software to customers and perform value proving benchmarks. Calibrate software for customer needs and train customer for using and maintaining software.
Resolve customer complaints with software and respond to suggestions for improvements and enhancements.

Required Qualifications

Advanced Degree in Statistics, Operations Research, Computer Science, Mathematics, or Machine Learning.

Proven ability to apply modeling and analytical skills to real-world problems.

Knowledge of machine learning techniques (clustering, decision tree learning, artificial neural networks, etc.) and statistical concepts (regression, properties of distributions, statistical tests, etc.).

Solid programming skills 2-3 languages out of R, SQL, Python, TensorFlow, PySpark, Java, JavaScript or C++.

Absolutely must have: graduate school level knowledge of Revenue Management models and algorithms.

Experience (minimum 4 out of 7) with deployment of machine learning and statistical models on a cloud:

1. MLOps within the enterprise CI/CD process for ML models 2 years

2. Experience deploying ML APIs in production environments in GCP using GKE 2 years

3. Experience in using GCP Vertex AI for ML and BigQuery 1 year

4. Knowledge in Terraform and Containers technologies 2 years

5. Experience writing data processing jobs using GCP Dataflow and Dataproc 2 years

6. Experience setting up ML model monitoring and autoscaling for ML prediction jobs 1 year

7. Understanding of machine learning concepts to scale ML across different services by leveraging Feature Store, Artifacts Registry and Analytics Hub 1 year

Desirable Qualifications

Familiarity with airline, hospitality or retailing industries and decision support systems employed there.
Experience developing customer choice models, price elasticity estimation and market potential estimation.
Understanding of airline distribution, pricing, revenue management, NDC and Offer/Order Management concepts.
Carrier Ladder

Thanks and Regards

Sushil Kaushik 

Keywords: cplusplus continuous integration continuous deployment artificial intelligence machine learning rlang information technology
Remote role :: Direct Client :: Sr. Data Scientist with Airline Revenue Management (Min 10+year exp required) :: contract
sushil.k@mitsinfo.com
https://jobs.nvoids.com/job_details.jsp?id=2107469&uid=
sushil.k@mitsinfo.com
View All
10:30 PM 23-Jan-25


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