Senior Data Scientist
Jobgether
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This role on the market
2,096 open scientist roles across 315 companies are on ApplySarthi right now, most of them in Bengaluru (133), Hyderabad (71), Delhi NCR (33).
- Sr. Applied Scientist, AWS Applied AI Solutions - Life SciencesAmazon
- Post Doctorate ScientistRoche
- Data Scientist Senior Associate (AI/ML) - Risk ManagementJPMorgan
- Research Scientist - Interactive AvatarsSynthesia
- Senior Data ScientistConstructor.io
What scientist roles keep asking for: Python (56%), Machine learning (45%), SQL (28%), C++ (18%), Java (17%), Deep learning (16%), R (16%), LLMs (15%) — counted across their open postings here.
Remote Data Scientist jobs · AWS jobs · BigQuery jobs · CI/CD jobs · Go jobs
Jobgether has 4,371 open roles listed here.
Counted across 14 company job boards, updated as roles open and close.
Preparing for this interview
Interviews for scientist roles keep coming back to Python, Machine learning, SQL, C++. Practise those questions before you sit with Jobgether.
Questions you are likely to be asked
- Why do you want to join Jobgether?
- What is your experience with Machine learning? Tell me one thing you learned the hard way.
- What would you check first if a model's accuracy dropped after going live?
- When would you not use machine learning for a problem?
- Walk me through a model you built, from the data to how it was used.
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Practise the Senior Data Scientist at Jobgether interview free →Accountabilities: Develop data-driven algorithms using raw, noisy, and unlabeled data to improve browser and device identification capabilities. Design and implement supervised, semi-supervised, and unsupervised machine learning approaches, including methods for high-cardinality categorical data. Own data science initiatives end to end, from problem definition and experimentation through production deployment and integration with real-time services. Design experiments and technical solutions for real-time inference, model-to-service integration, training automation, and other machine learning engineering challenges. Conduct exploratory data analysis to investigate business and technical questions, identify anomalies, and evaluate model and dataset performance. Develop practical approaches for collecting and evaluating data when labeled datasets are limited or unavailable. Contribute to an engineering-focused, data-driven culture by sharing tools, methodologies, and effective data science practices with colleagues. Collaborate across data science and engineering functions to turn machine learning concepts into reliable, production-ready services. Participate in a shared on-call rotation, with schedules communicated in advance and coverage designed to minimize disruption outside normal working hours. Requirements 5+ years of professional experience spanning machine learning, data science, and backend development or closely related engineering disciplines. Advanced knowledge of machine learning fundamentals and statistical methodologies. Strong practical experience with supervised learning, including gradient boosting and approaches for high-cardinality categorical data. Hands-on experience with semi-supervised and unsupervised learning techniques. Strong exploratory data analysis and creative problem-solving skills, particularly when working with incomplete, noisy, or unlabeled datasets. Proven experience developing real-time machine learning services, including model inference and integration between models and production applications. Ability to transform machine learning models into minimum viable real-time web services and production-ready solutions. Excellent coding and software engineering skills, including strong SQL capabilities and familiarity with Git, CI/CD pipelines, IDEs, and shell scripting. Strong communication skills and fluent English, with the ability to collaborate effectively in a distributed international environment. A research mindset and academic background are advantageous. Experience with Go and backend development is a plus. Familiarity with analytical data platforms such as ClickHouse, Snowflake, or BigQuery is beneficial. Experience with data transformation frameworks such as dbt, visualization tools such as Superset, Tableau, or Looker, or vector databases such as Pinecone, FAISS, or Qdrant is a plus. Experience building embedding-based search systems is advantageous. Familiarity with technologies such as Go, SQL, advanced ML frameworks, ClickHouse, dbt, and AWS is beneficial. Benefits Competitive compensation, with the source role indicating a US cash compensation range of $152,000–$205,000 USD ; compensation ranges are location-specific and may differ for candidates based in India. Fully remote working environment. Opportunity to work on challenging machine learning problems involving real-time systems, large-scale data, and advanced device intelligence. Exposure to modern machine learning, data engineering, backend development, and cloud infrastructure technologies. Opportunity to contribute to technical strategy and influence engineering and data science practices. Collaboration with a globally distributed team. Inclusive environment that values diverse experiences, perspectives, and backgrounds. Candidates must be authorized to work from their home location; visa sponsorship is not provided. Participation in a shared on-call rotation with advance scheduling and an effort to balance coverage fairly while minimizing off-hours disruption.
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Listed on lever · posted 2026-10-05. ApplySarthi collects openings and links to application pages; the role is advertised by Jobgether, not by us.