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Data Scientist

DocuSign

Data Scientist

DocuSign

Bengaluru, India

·

On-site

·

Full-time

·

6d ago

Company Overview Docusign brings agreements to life.

Over 1.5 million customers and more than a billion people in over 180 countries use Docusign solutions to accelerate the process of doing business and simplify people’s lives.

With intelligent agreement management, Docusign unleashes business-critical data that is trapped inside of documents.

Until now, these were disconnected from business systems of record, costing businesses time, money, and opportunity.

Using Docusign’s Intelligent Agreement Management platform, companies can create, commit, and manage agreements with solutions created by the #1 company in e-signature and contract lifecycle management (CLM).

What you'll do The GDA (Global Data Analytics) Data Scientist is a highly motivated self-starter who is responsible for designing, building, and promoting models and algorithms that power the next generation of machine learning and data science products for the various organizations at Docusign.

You will be solving difficult and non-routine problems by applying analytical methods in novel ways; this includes processing, analyzing and interpreting large and sophisticated data sets, with an emphasis on actionable results.

You will also need to collaborate closely with Sales GTM (Go To Market), Customer Success, Engineering and other teams to implement model-based solutions, measure the effectiveness of data products and drive growth and customer success.

This role will influence and shape the design, architecture, and roadmap for predictive and prescriptive data products for the GTM teams.

This position is an individual contributor role reporting to the Senior Manager, Data Science GDA.

Responsibility Collaborate with a cross-functional agile team spanning data science, data engineering, product management, and business experts to build new product features that advance our mission to understand our platform and help us sustainably grow as a business Lead Data Science projects end-to-end, ensuring cross team collaboration and partnership with business Contribute to designing, building, evaluating, shipping, and refining our data products by hands-on ML development Build product recommendation systems that support the Docusign Agreement Cloud Manage data ingestion from multiple infrastructures Coordinate effective, quantitative strategies directly derived from communication with stakeholders Drive optimization, testing, and tooling to improve quality Design experiments that evaluate the effectiveness of data products Mentor junior members of the team on mathematical modeling and ML best practices Develop data preparation processes to consolidate heterogeneous datasets and work around data quality issues Communicate and present strategic insights to non-technical audiences Work within the Machine Learning platform team to deploy models to production using existing and emerging machine learning methods and technologies Work with stakeholders to translate product requirements into robust, customer-agnostic machine learning success metrics Job Designation Hybrid: Employee divides their time between in-office and remote work.

Access to an office location is required. (Frequency: Minimum 2 days per week; may vary by team but will be weekly in-office expectation) Positions at Docusign are assigned a job designation of either In Office, Hybrid or Remote and are specific to the role/job.

Preferred job designations are not guaranteed when changing positions within Docusign.

Docusign reserves the right to change a position's job designation depending on business needs and as permitted by local law.

What you bring Basic Bachelor or Master’s degree in Physics, Mathematics, Statistics, Computer Science or related field 5+ years hands on experience in building data science applications and machine learning pipelines

Experience: with Python both for research and software development purposes

Experience: across the GTM domain as a Data Scientist Preferred Knowledge of common machine learning and statistics frameworks and concepts

Experience: with large data sets, distributed computing and cloud computing platforms Proficiency with relational databases (e.g., SQL) Ability to break down technical concepts into simple terms to present to diverse, technical, and non-technical audiences

Experience: in training and deploying machine learning models in production environments Knowledge of Apache Airflow, Spark, Snowflake

Experience: working with technologies like AWS, Git and Terraform MLOps experience Effective written and verbal communication skills Track record of driving successful data science initiatives while balancing the diagnosis and fixing of urgent problems with a thoughtful approach

Experience: creatively working with challenging data and systems Ability to deliver in a complex and fast-moving organization at a global scale Deeply analytical with a keen understanding of business processes and programs and the ability to translate data and insights into operational readouts Life at Docusign Working here Docusign is committed to building trust and making the world more agreeable for our employees, customers and the communities in which we live and work.

You can count on us to listen, be honest, and try our best to do what’s right, every day.

At Docusign, everything is equal.

We each have a responsibility to ensure every team member has an equal opportunity to succeed, to be heard, to exchange ideas openly, to build lasting relationships, and to do the work of their life.

Best of all, you will be able to feel deep pride in the work you do, because your contribution helps us make the world better than we found it.

And for that, you’ll be loved by us, our customers, and the world in which we live.

Accommodation Docusign is committed to providing reasonable accommodations for qualified individuals with disabilities in our job application procedures.

If you need such an accommodation, or a religious accommodation, during the application process, please contact us at accommodations@docusign.com.

If you experience any issues, concerns, or technical difficulties during the application process please get in touch with our Talent organization at taops@docusign.com for assistance.

Applicant and Candidate Privacy Notice:

The GDA (Global Data Analytics) Data Scientist is a highly motivated self-starter who is responsible for designing, building, and promoting models and algorithms that power the next generation of machine learning and data science products for the various organizations at Docusign.

You will be solving difficult and non-routine problems by applying analytical methods in novel ways; this includes processing, analyzing and interpreting large and sophisticated data sets, with an emphasis on actionable results.

You will also need to collaborate closely with Sales GTM (Go To Market), Customer Success, Engineering and other teams to implement model-based solutions, measure the effectiveness of data products and drive growth and customer success.

This role will influence and shape the design, architecture, and roadmap for predictive and prescriptive data products for the GTM teams.

This position is an individual contributor role reporting to the Senior Manager, Data Science GDA.

Responsibility Collaborate with a cross-functional agile team spanning data science, data engineering, product management, and business experts to build new product features that advance our mission to understand our platform and help us sustainably grow as a business Lead Data Science projects end-to-end, ensuring cross team collaboration and partnership with business Contribute to designing, building, evaluating, shipping, and refining our data products by hands-on ML development Build product recommendation systems that support the Docusign Agreement Cloud Manage data ingestion from multiple infrastructures Coordinate effective, quantitative strategies directly derived from communication with stakeholders Drive optimization, testing, and tooling to improve quality Design experiments that evaluate the effectiveness of data products Mentor junior members of the team on mathematical modeling and ML best practices Develop data preparation processes to consolidate heterogeneous datasets and work around data quality issues Communicate and present strategic insights to non-technical audiences Work within the Machine Learning platform team to deploy models to production using existing and emerging machine learning methods and technologies Work with stakeholders to translate product requirements into robust, customer-agnostic machine learning success metrics
Basic Bachelor or Master’s degree in Physics, Mathematics, Statistics, Computer Science or related field 5+ years hands on experience in building data science applications and machine learning pipelines

Experience: with Python both for research and software development purposes

Experience: across the GTM domain as a Data Scientist Preferred Knowledge of common machine learning and statistics frameworks and concepts

Experience: with large data sets, distributed computing and cloud computing platforms Proficiency with relational databases (e.g., SQL) Ability to break down technical concepts into simple terms to present to diverse, technical, and non-technical audiences

Experience: in training and deploying machine learning models in production environments Knowledge of Apache Airflow, Spark, Snowflake

Experience: working with technologies like AWS, Git and Terraform MLOps experience Effective written and verbal communication skills Track record of driving successful data science initiatives while balancing the diagnosis and fixing of urgent problems with a thoughtful approach

Experience: creatively working with challenging data and systems Ability to deliver in a complex and fast-moving organization at a global scale Deeply analytical with a keen understanding of business processes and programs and the ability to translate data and insights into operational readouts

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About DocuSign

DocuSign

DocuSign helps small- and medium-sized businesses collect information, automate data workflows, and sign on various devices.

5,001-10,000

Employees

San Francisco

Headquarters

$13.0B

Valuation

Reviews

3.8

42 reviews

Work Life Balance

3.6

Compensation

3.9

Culture

4.0

Career

3.9

Management

3.4

77%

Recommend to a Friend

Pros

Opportunity for career growth

Interesting projects and challenges

Competitive compensation and benefits

Cons

Some organizational bureaucracy

Career progression could be clearer

Room for improvement in processes

Salary Ranges

21 data points

Mid/L4

Senior/L5

Staff/L6

Mid/L4 · Data Engineer

1 reports

$189,280

total / year

Base

$145,600

Stock

-

Bonus

-

$189,280

$189,280

Interview Experience

4 interviews

Difficulty

3.0

/ 5

Duration

14-28 weeks

Offer Rate

50%

Experience

Positive 50%

Neutral 25%

Negative 25%

Interview Process

1

Application Review

2

Recruiter Screen

3

Technical Assessment

4

Technical Interview Rounds

5

Onsite/Virtual Interviews

6

Background Check

Common Questions

Coding/Algorithm

Technical Knowledge

Behavioral/STAR

Past Experience