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Data Scientist / Developer


Reference Number: RKMSD192

Data Scientist / Developer
experience  Not Disclosed
location  100% Remote (Within US)
duration  6.0 Months
salary  Not Disclosed
jobtype  Not Disclosed
Industry  Government - State
duration  $50/hour - $55/hour
Job Description


The client seeks a data scientist/software developer to support a proof- of-concept demonstration using natural language processing and other machine learning methods to improve the intake process. This work is critical to demonstrating the potential of the latest technology to improve the lives of children at risk.

The Data Scientist/Developer will be responsible for supporting the development, implementation, and testing of statistical models, integration of NLP, and refinement and testing of the prototype. The data scientist will work closely with the client stakeholders and technical team members to ensure the quality of the results and that the derived methods are transparent, statistically sound, relevant, and documented.

Key Responsibilities

Current Processes & Technology
Collectively engage with the client and other team members to understand the current intake process and outcomes.
Identify how the client decides to deploy resources based on the intake information.
Contribute to the identification of shortcomings in the intake process and opportunities to improve outcomes. Use information from interviews, discovery sessions, and workshops to identify.
Identify any internal data sources used in the intake process.

Devise New Intake Approach Using New Technologies
Based on an understanding of the current intake process and its shortcomings, devise and propose an improved process using natural language processing and other machine learning methods to favorably impact child outcomes while reducing resources.
Quantify to the extent possible, the impact of the improved process and use of new technology.

Map Anticipated Data Source Changes
Determine how internal data sources might change with future modifications to core IT systems used by the client.
Adjust the proposed intake process to account for any data source changes

Design Review(s)
Conduct a preliminary and a final design review of an improved intake tool proof-of-concept implementation.
Include anticipated outcomes from the use of the technology and any differences that may be evident from the proof-of-concept implementation.
If an LLM is intended to be used, show how the data will be protected.
Identify the source of the data that will be used in the proof-of-concept implementation. If data from the client is unavailable, describe an alternative approach.

Implementation of Proof-of-Concept
Create a means of hosting data, whether the data is provided by the client, simulated, or other means.
Construct a demonstrable prototype application that will illustrate the new technology’s impact on children and client resources.
Build the prototype application using Python, C++, JAVA, and/or SQL, or similar language. Use Postgres or a similar database if needed.
Integrate the proof-of-concept with the available data source.
Conduct tests to validate the functionality of the application.
Validate to the extent possible, the impact on children and client resources from using the prototype in a fully implemented form.
Seek validation of the application’s efficacy from key client stakeholders through one-on-one demonstrations.

Conference Room Demonstration
During 3-4 days, provide a conference room demonstration that shows how the prototype application can improve child outcomes and reduce client resources.
Provide stakeholders a hands-on-experience with the application.

Agile Development Process
Participate in the Agile development process to ensure the success of the project.

Required Skills/Experience
Bachelor’s or Master’s degree in computer science, engineering, physics, or related field.
Have participated in US Federal Gov’t data science programs requiring TS/SCI clearance, delivering solutions requiring the combination of geospatial disciplines, and pattern of life analysis.
Proven expertise custom developing AI programs “from the ground up”, including but not limited to, text processing, and optimized selection and application of multiple LLMs.
Minimum two (2) years of experience designing and implementing machine-learning solutions based on first principles, including developing custom statistical methods without reliance on pre-built libraries.
Minimum academic math background to include full calculus series, linear algebra, and statistics. Discrete math, advanced statistics, and differential equations are a plus.
Knowledge and competence in databases such as Postgres, MySQL, SQL Server, as well as Python, C++, JAVA, React, NextJS, NodeJS, and AWS.
Experience deploying analytic models in pilot or AWS production environments.
Good communication skills with both technical and non-technical people.
Strong understanding of model validation and performance measurement.
Experience deploying advanced analytic solutions in public-sector or regulated environments.

Notes:
100% remote
8:00 AM - 5:00 PM
Mon - Fri


VIVA is an equal opportunity employer. All qualified applicants have an equal opportunity for placement, and all employees have an equal opportunity to develop on the job. This means that VIVA will not discriminate against any employee or qualified applicant on the basis of race, color, religion, sex, sexual orientation, gender identity, national origin, disability or protected veteran status.

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