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Remote Data Extraction Jobs in Illinois (NOW HIRING)

Data Scientist

Northbrook, IL · Remote

$80K - $120K/yr

Accepting applications until 12/15/2026 #LI-SG2 #LI-Remote * Process, cleanse, and verify the ... Analyze large, complex datasets to extract meaningful insights, selecting appropriate statistical ...

Data Engineer

O Fallon, IL · On-site +1

$61K - $141K/yr

Remote Work: No Job Number: R0240529 Location: O'Fallon,IL,US Share job via: Share Data Engineer ... Experience developing scalable ETL/ELT workflows for reporting and analytics * Experience creating ...

Job location -Rosemont, IL- The position is based in Rosemont, IL, but remote work anywhere in the ... Building data ingestion and integration pipelines using tools like Apache Kafka or ETL technologies ...

Senior Data Engineer

Chicago, IL · On-site +1

$109K - $148K/yr

Our team is 100% distributed and remote. Responsibilities: * Design and oversee key forward- and reverse-ETL patterns to deliver data to relevant stakeholders. * Develop scalable patterns in the ...

Business Data Analyst

Naperville, IL · On-site +1

$55K - $120K/yr

... fully remote arrangements for the ideal candidate. Responsibilities: * Elicit, analyze, and ... Knowledgeable in Extract Mapper tool from Duck Creek. * Working knowledge of the Duck Creek ...

Lead Data Engineer

Deerfield, IL · On-site +1

$160K - $193K/yr

Developing & maintaining ETL/ELT pipelines * Utilizing professional SQL development * Professional ... Experience may be gained concurrently. 100% remote. Apply online at: www.fbin.com/careers ...

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Remote Data Extraction information

What are some common challenges faced in a remote data extraction role and how can they be addressed?

One common challenge in remote data extraction is ensuring data accuracy while working independently, especially when dealing with large and diverse datasets. Discrepancies can arise from inconsistent data formats or sources, so developing strong attention to detail and utilizing reliable extraction tools is critical. Another challenge is communication, as collaborating with data analysts or project managers remotely requires proactive updates and clear documentation. To address these issues, it's helpful to establish regular check-ins with your team, use standardized data templates, and stay organized with project management software.

What jobs pay 4000 a week without a degree?

Remote data extraction roles can pay around $4,000 per week for experienced professionals, especially those skilled in data scraping, automation tools, and programming languages like Python or SQL. These positions often require strong technical skills, self-motivation, and the ability to work independently, with some roles offering high pay based on project complexity and volume.

How to make $1000 a week remotely?

Remote data extraction jobs can pay between $10 and $25 per hour, so earning $1000 weekly typically requires working 40 to 50 hours. Developing strong data handling skills, familiarity with tools like Excel or data scraping software, and maintaining consistent productivity can help achieve this income level. Building a reliable client base or working through reputable platforms can also increase earning potential.

What is remote data extraction?

Remote data extraction is the process of retrieving and collecting data from various sources—such as websites, databases, or documents—without being physically present at the source location. This is typically achieved using specialized software, scripts, or tools that can access and gather data over the internet or through remote connections. Professionals in this field often automate data collection tasks to save time and improve accuracy, especially when dealing with large volumes of information. Remote data extraction is commonly used for business intelligence, market research, competitive analysis, and data migration projects.

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

To thrive as a Remote Data Extraction Specialist, you need proficiency in data analysis, attention to detail, and experience with data extraction and transformation techniques, often supported by a degree in computer science, information systems, or a related field. Familiarity with tools such as SQL, Python, web scraping frameworks (like BeautifulSoup or Scrapy), and data management platforms is typically required. Strong problem-solving skills, self-motivation, and effective communication are valuable soft skills for excelling in a remote environment. These abilities ensure accurate data collection, efficient workflow, and reliable delivery of insights for business or research needs.

How to become a data extractor?

To become a remote data extractor, you should develop skills in data collection, cleaning, and analysis, often using tools like Excel, SQL, or web scraping software. Relevant experience, attention to detail, and the ability to work independently are important, and some roles may require basic knowledge of programming languages such as Python or JavaScript.

What is the difference between Remote Data Extraction vs Remote Data Entry?

AspectRemote Data ExtractionRemote Data Entry
Primary FocusExtracting data from various sources like websites, PDFs, or imagesInputting data into databases or spreadsheets
Skills RequiredWeb scraping, data analysis, attention to detailTyping speed, accuracy, basic computer skills
Tools UsedWeb scraping software, OCR tools, data management platformsExcel, Google Sheets, data entry software
Work EnvironmentMostly independent, often project-basedConsistent, repetitive tasks

Remote Data Extraction involves retrieving data from various sources, requiring technical skills like web scraping and data analysis. Remote Data Entry focuses on inputting data accurately into systems, emphasizing speed and precision. Both roles are remote-friendly but differ in technical complexity and daily tasks.

Is 40 too late for data science?

Age is not a strict barrier for a remote data extraction or data science role; many professionals transition into the field later in life. Success depends on skills, experience, and continuous learning of tools like Python, SQL, and machine learning concepts, regardless of age.
What are the most commonly searched types of Data Extraction jobs in Illinois? The most popular types of Data Extraction jobs in Illinois are:
What job categories do people searching Remote Data Extraction jobs in Illinois look for? The top searched job categories for Remote Data Extraction jobs in Illinois are:
What cities in Illinois are hiring for Remote Data Extraction jobs? Cities in Illinois with the most Remote Data Extraction job openings:
Infographic showing various Remote Data Extraction job openings in Illinois as of July 2026, with employment types broken down into 77% Full Time, and 23% Contract. Highlights an 100% Remote job distribution.
Data Scientist

Data Scientist

UL Solutions

Northbrook, IL • Remote

$80K - $120K/yr

Other

Medical, Dental, Vision, Retirement, PTO

Posted 9 days ago


UL Solutions rating

8.3

Company rating: 8.3 out of 10

Based on 27 frontline employees who took The Breakroom Quiz

23rd of 105 rated laboratories


Job description

The Data Scientist is responsible for delivering data-driven insights and analytical solutions that support business decision-making. This role partners closely with business stakeholders, data engineering, and development teams to analyze complex datasets, build visualizations, and develop predictive models. The ideal candidate combines strong analytical skills with business acumen and effective communication in an Agile environment.

Required:

  • Master's degree in Data Science, Data Analytics, Computer Science, or related field
  • 3-5 years of experience in data analytics or data science roles
  • Strong proficiency in SQL, Python, and R
  • Experience with Power BI, Tableau, or similar visualization tools, including data modeling and DAX
  • Strong analytical and problem-solving skills with attention to detail
  • Experience gathering and documenting business requirements
  • Familiarity with Agile methodologies and Azure DevOps
  • Excellent communication, interpersonal, and stakeholder management skills
  • Understanding of statistical methods and probability theory

Preferred: 

  • Experience with machine learning frameworks such as scikit-learn, TensorFlow, or Keras
  • Experience with Salesforce data and reporting
  • Experience in business services or manufacturing industries
  • Familiarity with NLP or deep learning techniques

What you'll experience working for ULS 

UL Solutions has been pioneering change since 1894 and we're still leading the way. From day one, we've blazed a trail protecting the planet and everyone on it. Our teams have influenced billions of products, plus services, software offerings and more. We break things, burn things and blow things up. All in the name of safety science. 

That's where you come in - because none of it could happen without you. It takes passion to protect people, problem-solving to safeguard personal data and conviction to make the world a more sustainable place. It takes bold ideas and brilliant minds to build a better world for future generations across the globe.  

This is more than a job. It's a calling. A passion to use our expertise and play our part in creating a more secure, sustainable world today - and tomorrow. As a member of our safety science community, you'll use your ideas, your energy and your ambition to innovate, challenge and ultimately, help create a safer world. 

Everyone here is unique. But we're also a global community, working together to help create a safer world. Join UL Solutions and you can connect with the brightest minds in the business, all bringing their distinct perspectives and diverse backgrounds together to deliver real change. 

Empowering our customers to keep the world safe means thinking ahead. It means investing in training and empowering our people to learn and innovate. At UL Solutions, we help build a better future - one where everyone benefits. 

Join UL Solutions to be at the center of safety. To learn more about us and the work we do, visitUL.com 

Total Rewards: We understand compensation is an important factor as you consider the next step in your career. The estimated salary range for this position is $80,000 to $120,000 and is based on multiple factors, including job-related knowledge/skills, experience, geographical location, as well as other factors. This position is eligible for annual bonus compensation with a target payout of 10% of the base salary. This position also provides health benefits such as medical, dental and vision; wellness benefits such as mental and financial health; and retirement savings (401K) commensurate with the standard rewards offered in each individual location or country. We also provide full-time employees with paid time off including vacation (15 days), holiday including floating holidays (12 days) and sick time off (72 hours).

Accepting applications until 12/15/2026

#LI-SG2

#LI-Remote

  • Process, cleanse, and verify the integrity, quality, and reliability of data used for analysis, reporting, and predictive modeling.
  • Perform ad-hoc and recurring analyses, presenting results and insights in a clear, concise manner to support business decision-making.
  • Analyze large, complex datasets to extract meaningful insights, selecting appropriate statistical, analytical, and machine learning techniques based on the problem context.
  • Select relevant features and build, evaluate, and optimize classification and predictive models using machine learning techniques.
  • Apply data mining and advanced analytical methods to identify trends, patterns, and relationships within structured and unstructured data.
  • Extend and enrich customer and business datasets using third-party data sources when required to improve analytical outcomes.
  • Enhance data collection and preparation procedures to ensure relevant, high-quality inputs for analytic and machine learning systems.
  • Use data modeling and evaluation strategies to identify patterns and accurately predict unseen or future instances.
  • Collaborate with business and technical stakeholders to align analytical solutions with business objectives.
  • Adhere to the Underwriters Laboratories Code of Conduct and follow all physical and digital security, data governance, and compliance practices.Collaborate with business stakeholders to gather, analyze, and document requirements, translating needs into BRDs, user stories, and functional specifications.
  • Analyze large, complex datasets using statistical and analytical techniques to identify trends, patterns, and actionable insights.
  • Build and maintain dashboards, reports, and data visualizations using Power BI, Tableau, or similar tools.
  • Apply statistical methods and basic machine learning models to support forecasting, prediction, and business decision-making.
  • Perform ad-hoc and recurring analyses to support both operational reporting and strategic initiatives.
  • Process, cleanse, validate, and maintain data accuracy and integrity across analytical datasets.
  • Enhance data collection processes and integrate third-party data sources to improve analytical coverage and model performance.
  • Communicate analytical findings and recommendations clearly to both technical and non-technical audiences.
  • Partner with development teams using Azure DevOps to manage work items, track progress, and ensure timely delivery.
  • Support data science and analytics initiatives using SQL, Python, R, and Excel.
  • Collaborate with data engineering teams to support analytics pipelines and data lake initiatives.

What UL Solutions employees say

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Benefits

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