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Staff Data Scientist, Applied Science

LinkedIn

Hybrid
Bengaluru, KA
Full-time
Staff
Senior
10+ yrs
Salary not listedPosted 3h ago

Real job — pulled straight from LinkedIn’s careers page · Verified September 5, 2026 · No reposts.

Job description

LinkedIn is hiring a Staff Data Scientist, Applied Science — a full-time, based in Bengaluru, KA role. Apply directly on LinkedIn's careers page below.

Staff Data Scientist, Applied Science

Location: Bengaluru, KA, in

Company Description

LinkedIn is the world's largest professional network, built to create economic opportunity for every member of the global workforce. Our products help people make powerful connections, discover exciting opportunities, build necessary skills, and gain valuable insights every day. We're also committed to providing transformational opportunities for our own employees by investing in their growth. We aspire to create a culture that's built on trust, care, inclusion, and fun – where everyone can succeed.

Join us to transform the way the world works.

Job Description

LinkedIn’s Data Science team leverages big data to develop data-driven solutions for LinkedIn’s Infrastructure organization. LinkedIn’s infrastructure is the backbone of our operations, encompassing data centers, servers, network infrastructure, power systems, and foundational software platforms that power all our products and services. A career at LinkedIn offers countless ways for an ambitious data scientist to have an impact.

This role involves guiding the Experimentation Platform team in developing a statistically correct, flexible, and powerful platform for online experimentation. You will be the statistical voice and technical lead, co-designing a new AI experimentation experience and backend, ensuring high-level functionality like hierarchical experimentation and statistical correctness guardrails. You will be in charge of developing and integrating a variety of experiment analysis techniques, including more powerful variance reduction methods, quantile treatment effect analysis, and cross-experiment analysis. Finally, you will help drive expansion of platform capabilities into additional experiment designs, such as cluster-randomized designs and budget split testing. 

At LinkedIn, our approach to flexible work is centered on trust and optimized for culture, connection, clarity, and the evolving needs of our business. The work location of this role is hybrid, meaning it will be performed both from home and from a LinkedIn office on select days, as determined by the business needs of the team. 

Responsibilities:

• Co-design the new AI experimentation experience and the backend that powers it.

• Collaborate cross-functionally to identify business opportunities and develop algorithms and methodologies to address them.

• Analyze large-scale structured and unstructured data.

• Develop methodologies to enhance LinkedIn’s online experimentation capabilities.

• Engage with technology partners to build, prototype and validate scalable tools/applications end to end (backend, frontend, data) for converting data to insights.

• Promote and enable adoption of technical advances in Data Science; elevate the art of Data Science practice at LinkedIn.

• Initiate and drive projects to completion independently.

• Act as a thought partner to senior leaders to prioritize/scope projects, provide recommendations and evangelize data-driven business decisions in support of strategic goals.

• Partner with cross-functional teams to initiate, lead or contribute to large-scale/complex strategic projects for team, department, and company.

• Provide technical guidance and mentorship to junior team members on solution design as well as lead code/design reviews.

Qualifications

Basic Qualifications:

  • MS or PhD in a quantitative discipline: Statistics, Economics, Applied Mathematics, Operations Research, Computer Science, Informatics, or other quantitative field relevant to the science of experimentation.
  • Expertise in statistics, including analysis of bias and variance for experimental design and analysis approaches.
  • Fluent in at least one programming language and a capable user of AI software engineering tools.
  • Ability to establish requirements and design a new system for a broad set of users.
  • 3+ years in a position that includes substantial technical leadership. 10+ years of total experience

 

Preferred Qualifications:

  • Experience in infrastructure/platform development.
  • Ability to collaborate with and shape technical solutions for a broad set of customers and stakeholders.

Suggested Skills:

  • Structured thinking around bias
  • Understanding of AI Experimentation
  • Leadership

Additional Information

India Disability Policy 

LinkedIn is an equal employment opportunity employer offering opportunities to all job seekers, including individuals with disabilities. For more information on our equal opportunity policy, please visit https://legal.linkedin.com/content/dam/legal/Policy_India_EqualOppPWD_9-12-2023.pdf

Global Data Privacy Notice and Compliance Posters for Job Candidates 

Please use this link to access documents that provide information about how LinkedIn handles the personal data of employees and job applicants, as well as the E-Verify Participation Notice and the Department of Justice Immigrant and Employee Rights Section Right to Work posters: https://www.linkedin.com/legal/candidate-portal.

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Frequently asked questions

What skills are required for Staff Data Scientist, Applied Science at LinkedIn?

The required skills for Staff Data Scientist, Applied Science at LinkedIn include: AI, Machine Learning, Python, Data Science, Leadership.

What is the seniority level for Staff Data Scientist, Applied Science at LinkedIn?

Staff Data Scientist, Applied Science at LinkedIn is a Staff / Senior level position.

How do I apply for Staff Data Scientist, Applied Science at LinkedIn?

You can view the full description and apply for Staff Data Scientist, Applied Science at LinkedIn on EchoJobs: https://echojobs.io/job/linkedin-staff-data-scientist-applied-science-w9ui9.