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Top pay

Senior Data Scientist

Soum · company siteEstimate53w
Posted 12 months ago — may be filled

1 · Can you apply from ?

Not open

The ad doesn’t say — see the full posting.

2 · What reaches you

1Pay
2Platform fee− $0
3Payout fee · Wise− $0 – $6.11
≈ In your money
$11,203 / month

Wise fee page, checked 25 Sep 2026
Fixed fees assume one withdrawal a month.

3 · How you get paid

Unknown — ask the company

How often
Unknown
Ask the company
First money
Unknown
Ask the company

4 · Your working hours

2am – 11am
12am6am12pm6pm12am
4 h at night5 h morningEastern Daylight Time

5 · Trust

Company site · found 27 Sep 2026
No one should ask you to pay to work.
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They ask for

5+ yearsNo degreePythonSQLTensorFlowPyTorchscikit-learnKubernetesAWSGoogle CloudDocker and containersGitDataform

Full description

Shown as posted, in English

Role: Senior Data Scientist Location: Egypt, Uzbekistan, and Pakistan (Remote) Work Week: Sunday – Thursday Work Timings: 9:00 AM – 6:00 PM (Saudi Arabian Time Zone)   Overview: We’re looking for a Senior Data Scientist to lead the development and deployment of advanced machine learning models that power critical business decisions. In this role, you’ll drive end-to-end ownership of ML solutions, from design and optimization to deployment and monitoring in production environments. You’ll also play a key role in shaping our data science strategy, mentoring junior team members, and ensuring that analytics insights translate into measurable business impact. This is a high-visibility role where your expertise will directly influence product innovation and growth.   Role & Responsibilities: Model Development and Optimization: Lead the design, development, and deployment of advanced ML models for complex use cases, such as recommendation systems, fraud detection, customer segmentation, and demand forecasting. Partner with data engineers and product teams to ensure models are scalable, reliable, and aligned with business needs. Continuously optimize algorithms for performance, accuracy, and efficiency. Deployment and Integration: Own end-to-end model deployment processes into production environments using Kubernetes and cloud platforms (AWS, GCP). Define and manage MLOps best practices, including model monitoring, automated retraining, and CI/CD for ML pipelines. Champion automation of model training, validation, and deployment workflows to improve system reliability. Analytics Strategy & Enablement: Act as a custodian of organizational data, ensuring data quality, consistency, and readiness for advanced analytics and modeling. Translate complex data insights into business impact, clearly communicating ROI to stakeholders. Drive adoption of analytics and data-driven decision-making across teams by mentoring and enabling business stakeholders. Leadership & Collaboration: Mentor junior data scientists and analysts, providing technical guidance and career development support. Collaborate closely with engineering and product leadership to shape the company’s data science strategy. Stay ahead of emerging AI/ML trends, tools, and research, and advocate for their adoption when relevant. Requirements: Proficiency in Python and SQL , with hands-on expertise in ML frameworks such as TensorFlow, PyTorch, Scikit-learn . Strong knowledge of deployment tools (Docker, Kubernetes, cloud platforms) and MLOps best practices . Proven ability to design and maintain production-grade ML systems. Deep understanding of statistical analysis, hypothesis testing, and data visualization . Knowledge of cloud-serverless technologies (AWS Lambda, GCP Functions, Azure Functions). Strong familiarity with GCP is a plus. Prior experience deploying ML solutions in E-commerce or high-growth environments is highly desirable. Familiarity to work with Git and GitHub. Dataform is a must Experience: 5+ years in data science, including hands-on ML model development and deployment. 3+ years in data analytics, statistical modeling, and experimentation. Experience mentoring or leading junior data scientists. Exposure to fast-scaling startup or tech environments is a strong plus

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Top pay
JobSoum · company siteEstimatePosted 53w ago

Senior Data Scientist

Posted 12 months ago — may be filled

1 · Can you apply from ?

Not open

The ad doesn’t say — see the full posting.

4 · Your working hours

2am – 11amEastern Daylight Time · 4 of 9 hours at night
12am3am6am9am12pm3pm6pm9pm12am

5 · Trust

Company siteFound 27 Sep 2026
No one should ask you to pay to work.
Something wrong?Report this post

They ask for

Full description

Shown as posted, in English

Role: Senior Data Scientist Location: Egypt, Uzbekistan, and Pakistan (Remote) Work Week: Sunday – Thursday Work Timings: 9:00 AM – 6:00 PM (Saudi Arabian Time Zone)   Overview: We’re looking for a Senior Data Scientist to lead the development and deployment of advanced machine learning models that power critical business decisions. In this role, you’ll drive end-to-end ownership of ML solutions, from design and optimization to deployment and monitoring in production environments. You’ll also play a key role in shaping our data science strategy, mentoring junior team members, and ensuring that analytics insights translate into measurable business impact. This is a high-visibility role where your expertise will directly influence product innovation and growth.   Role & Responsibilities: Model Development and Optimization: Lead the design, development, and deployment of advanced ML models for complex use cases, such as recommendation systems, fraud detection, customer segmentation, and demand forecasting. Partner with data engineers and product teams to ensure models are scalable, reliable, and aligned with business needs. Continuously optimize algorithms for performance, accuracy, and efficiency. Deployment and Integration: Own end-to-end model deployment processes into production environments using Kubernetes and cloud platforms (AWS, GCP). Define and manage MLOps best practices, including model monitoring, automated retraining, and CI/CD for ML pipelines. Champion automation of model training, validation, and deployment workflows to improve system reliability. Analytics Strategy & Enablement: Act as a custodian of organizational data, ensuring data quality, consistency, and readiness for advanced analytics and modeling. Translate complex data insights into business impact, clearly communicating ROI to stakeholders. Drive adoption of analytics and data-driven decision-making across teams by mentoring and enabling business stakeholders. Leadership & Collaboration: Mentor junior data scientists and analysts, providing technical guidance and career development support. Collaborate closely with engineering and product leadership to shape the company’s data science strategy. Stay ahead of emerging AI/ML trends, tools, and research, and advocate for their adoption when relevant. Requirements: Proficiency in Python and SQL , with hands-on expertise in ML frameworks such as TensorFlow, PyTorch, Scikit-learn . Strong knowledge of deployment tools (Docker, Kubernetes, cloud platforms) and MLOps best practices . Proven ability to design and maintain production-grade ML systems. Deep understanding of statistical analysis, hypothesis testing, and data visualization . Knowledge of cloud-serverless technologies (AWS Lambda, GCP Functions, Azure Functions). Strong familiarity with GCP is a plus. Prior experience deploying ML solutions in E-commerce or high-growth environments is highly desirable. Familiarity to work with Git and GitHub. Dataform is a must Experience: 5+ years in data science, including hands-on ML model development and deployment. 3+ years in data analytics, statistical modeling, and experimentation. Experience mentoring or leading junior data scientists. Exposure to fast-scaling startup or tech environments is a strong plus