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Remote Geology Data Science Jobs in Indiana (NOW HIRING)

This is a remote position. We do not offer visa sponsorship or assistance. Resumes and communication must be submitted in English. Responsibilities * Act as the founding Data Scientist on the product ...

S. or further education in Mathematics, Economics, Computer Science, Statistics, or another ... This is a remote/virtual position. * You must live in the United States of America. * You must be ...

Posting Type Remote/Hybrid Job Overview WHO WE ARE Relativity is a leading legal data intelligence ... Applied Science Team The Applied Science team operates at the core of Relativity's AI development.

The position is remote, but you need to live locally to come onsite periodically for meetings. Required Skills & Qualifications: * Bachelor's degree in Data Science, Statistics, Mathematics, Computer ...

Advanced Subject Mastery: Deep knowledge of geology, meteorology, oceanography, astronomy ... Adapts instruction using rock and mineral samples, weather data analysis, and interactive mapping ...

Advanced Subject Mastery: Deep knowledge of geology, meteorology, oceanography, astronomy ... Adapts instruction using rock and mineral samples, weather data analysis, and interactive mapping ...

Advanced Subject Mastery: Deep knowledge of geology, meteorology, oceanography, astronomy ... Adapts instruction using rock and mineral samples, weather data analysis, and interactive mapping ...

Advanced Subject Mastery: Deep knowledge of geology, meteorology, oceanography, astronomy ... Adapts instruction using rock and mineral samples, weather data analysis, and interactive mapping ...

Advanced Subject Mastery: Deep knowledge of geology, meteorology, oceanography, astronomy ... Adapts instruction using rock and mineral samples, weather data analysis, and interactive mapping ...

These components power our Product, Engineering, Analytics, and Data Science teams by enabling ... Excellent communication skills, with the ability to collaborate across multiple remote teams, share ...

These components power our Product, Engineering, Analytics, and Data Science teams by enabling ... Excellent communication skills, with the ability to collaborate across multiple remote teams, share ...

These components power our Product, Engineering, Analytics, and Data Science teams by enabling ... Excellent communication skills, with the ability to collaborate across multiple remote teams, share ...

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Remote Geology Data Science information

What are the key skills and qualifications needed to thrive as a Remote Geology Data Scientist, and why are they important?

To thrive as a Remote Geology Data Scientist, you need a solid background in geology, strong analytical skills, and proficiency in data science, typically supported by a degree in geosciences or a related field. Familiarity with programming languages (such as Python or R), GIS software (like ArcGIS or QGIS), and experience with data visualization and machine learning tools are commonly required. Excellent problem-solving abilities, attention to detail, and strong communication skills help convey complex geological insights to diverse stakeholders. These skills are crucial for analyzing large geoscientific datasets remotely, driving data-driven decision-making, and contributing valuable insights to geological projects.

What are some typical challenges faced by remote geology data scientists, and how can they be addressed?

Remote geology data scientists often encounter challenges related to collaborating with field teams, accessing large geospatial datasets, and ensuring data quality from a distance. Effective communication tools and regular virtual meetings help bridge the gap between remote and on-site teams. Utilizing cloud-based platforms for data storage and processing can facilitate access to large datasets, while standardized data collection protocols ensure consistency and accuracy. Building strong relationships with field personnel and staying proactive about potential data issues are key strategies for success in this role.

What is a Remote Geology Data Scientist?

A Remote Geology Data Scientist is a professional who analyzes geological data using advanced data science techniques, often working from a remote location. They apply statistical models, machine learning, and programming skills to extract insights from datasets related to earth sciences, such as mineral exploration, seismic activity, or environmental monitoring. Their work supports decision-making in industries like oil and gas, mining, and environmental consulting. Remote roles leverage digital tools and communication platforms to collaborate with teams and stakeholders from anywhere in the world.
What are the most commonly searched types of Geology Data Science jobs in Indiana? The most popular types of Geology Data Science jobs in Indiana are:
What are popular job titles related to Remote Geology Data Science jobs in Indiana? For Remote Geology Data Science jobs in Indiana, the most frequently searched job titles are:
What job categories do people searching Remote Geology Data Science jobs in Indiana look for? The top searched job categories for Remote Geology Data Science jobs in Indiana are:
What cities in Indiana are hiring for Remote Geology Data Science jobs? Cities in Indiana with the most Remote Geology Data Science job openings:
Talent Network: Lead Data Scientist

Talent Network: Lead Data Scientist

Toptal

Remote

Full-time

Posted 7 days ago


Job description

About Toptal

Toptal is a global network of top talent in business, design, and technology that enables companies to scale their teams, on-demand. With $200+ million in annual revenue and team members based around the globe, Toptal is the world's largest fully remote workforce.

We take the best elements of virtual teams and combine them with a support structure that encourages innovation, social interaction, and fun. We see no borders, move at a fast pace, and are never afraid to break the mold.

Job Summary

We are looking for a Senior Data Scientist to join us as the first Data Scientist on a new product we are building. This is a founding role: you will shape the data science function from the ground up, set technical direction, and own the end-to-end delivery of intelligent systems that define how our product creates value. You will tackle open-ended problems involving Task Mining, Process Mining, behavioral workflow analysis, pattern discovery, predictive modeling, and applied GenAI/ML systems. The goal is not just to build models, but to turn raw interaction data into measurable product and business impact: discovered workflows, bottlenecks, optimization opportunities, and scalable foundations for future DS/ML work.

This is a remote position. We do not offer visa sponsorship or assistance. Resumes and communication must be submitted in English.

Responsibilities
  • Act as the founding Data Scientist on the product: define the DS strategy, choose the right tools and frameworks, and establish best practices.
  • Design and build Task Mining and Process Mining solutions that transform raw interaction data into discovered workflows, patterns, bottlenecks, and optimization opportunities.
  • Design, develop, and deploy ML systems and data pipelines for large-scale structured, unstructured, and event/interaction data.
  • Build predictive and pattern-discovery solutions using supervised and unsupervised learning, representation learning, sequence modeling, and LLM/GenAI approaches where appropriate.
  • Establish practical foundations for dataset construction, labeling strategy, offline/online evaluation, monitoring, feedback loops, and human-in-the-loop review where needed.
  • Own projects end-to-end, from problem framing and experimentation through production deployment and iteration. Collaborate closely with engineering on data instrumentation, pipeline design, deployment, and integration of production-ready services.
  • Communicate findings, tradeoffs, and technical concepts effectively to both technical and business stakeholders.
Qualifications and Requirements
  • 5+ years of professional experience in Data Science, Machine Learning, or Applied ML roles.
  • Demonstrated experience operating as the sole or lead Data Scientist on a product or team - owning problems end-to-end without senior DS supervision.
  • Strong experience with supervised and unsupervised ML, modern ML/data tooling, and the judgment to select the right approach for the problem.
  • Practical familiarity with representation learning, sequence modeling, Transformers, LLMs, or GenAI systems where relevant to product use cases.
  • Experience handling large-scale structured, unstructured, event, or interaction datasets.
  • Advanced proficiency in Python and SQL, with hands-on experience using tools such as PyTorch, scikit-learn, pandas/Polars, experiment tracking, and production ML workflows.
  • Experience deploying ML models, data pipelines, or intelligent systems into production.
  • Familiarity with Task Mining, Process Mining, event-log analysis, behavioral analytics, workflow automation, or adjacent domains.
  • Advanced degree in Computer Science, Data Science, AI, Statistics, Mathematics, or a related field is a plus; equivalent practical experience is strongly valued.
What We Are Looking For
  • A founder's mindset: full responsibility for outcomes, not just deliverables.
  • Comfort operating in high ambiguity: able to turn unclear product goals, noisy data, and incomplete requirements into an executable roadmap.
  • Strong business sense - connects technical work to commercial impact and measurable product value.
  • Pragmatic technical judgment - knows when to use advanced ML, when to simplify, and when better data, labeling, or evaluation is the real bottleneck.
  • Ability to build foundations for rapid scaling: reusable datasets, pipelines, metrics, evaluation frameworks, and modeling patterns future DS/ML hires can build on.
  • Highly proactive problem solver who acts without waiting for detailed instructions.
  • Excellent communication skills, with the confidence to push back constructively and propose direction.
Nice to Have
  • Previous experience as a first or early Data Scientist at a startup or new product line.
  • Direct experience with Task Mining, Process Mining, workflow intelligence, RPA, or productivity analytics.
  • Experience with LLMs and Generative AI applications, especially evaluation, structured outputs, semantic labeling, summarization, or human-in-the-loop workflows.
  • Experience working with privacy-sensitive behavioral, productivity, or user-interaction data.
  • Experience with product experimentation, causal inference, or measuring the impact of workflow/process interventions.
  • Knowledge of MLOps and distributed processing frameworks, such as Spark.
  • Experience with cloud environments, especially GCP.
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