
Senior Manager - Operational Data Sciences
About Us
InMobi is the leading provider of content, monetization, and marketing technologies that fuel growth for industries around the world. Our end-to-end advertising software platform, connected content, and commerce experiences activate audiences, drive real connections, and diversify revenue for businesses everywhere.
InMobi Advertising is an end-to-end advertising platform that helps advertisers drive real connections with consumers. We drive customer growth by helping businesses understand, engage, and acquire consumers effectively through data-driven media solutions. Learn more at advertising.inmobi.com.
Glance is a consumer technology company that operates disruptive digital platforms, including Glance, Roposo, and Nostra. Glance’s smart lockscreen and TV experience inspires consumers to make the most of every moment by surfing relevant content without the need for searching and downloading apps. Glance is currently available on over 450 million smartphones and televisions worldwide. Learn more at glance.com.
Born in India, InMobi maintains a large presence in Bangalore and San Mateo, CA, and has operations in New York, Singapore, Delhi, Mumbai, Beijing, Shanghai, Jakarta, Manila, Kuala Lumpur, Sydney, Melbourne, Seoul, Tokyo, London, and Dubai. To learn more, visit inmobi.com.
Why you should join us?
At our core, we believe in the power of data to drive smarter decisions and transform operations. As an Operational Data Scientist, you'll be at the forefront of this mission—leading initiatives that streamline business processes, accelerate time to insight, and align analytics with strategic goals.
You'll work in an environment that values rigor in experimental design, seamless model integration, and impactful operational analytics. We’re not just looking for technical talent—we want a strategic thinker and a collaborative leader who thrives at the intersection of data, business, and execution.
If you're passionate about solving complex problems, influencing high-stakes decisions, and driving measurable outcomes, this is the opportunity to make your mark. Join us and be part of a team that turns data into action—and action into impact.
What will you be doing?
1. Experiment Design and Interpretation:
- Lead and design complex experiments, addressing challenges with statistical rigor.
- Interpret results and provide actionable insights to drive business decisions.
2. Data Engineering Workflow and Design:
- Partner with stakeholders to ensure data systems and structures are efficient and reliable.
- Reduce turnaround time (TAT) for analytics, feature exploration, and experimentation setup
3. Data Science Model Integration:
- Collaborate with data science teams to integrate models into workflows.
- Define success metrics, identify inefficiencies, and leverage model outputs to enhance operations.
4. Proactive and Reactive Analysis:
- Conduct exploratory data analysis, simulations, and hypothesis testing.
- Provide strategic support and actionable insights to address business challenges.
5. Health Metrics Design and Implementation:
- Define, implement, and monitor key performance metrics to assess platform performance and user behavior.
6. Leadership and Collaboration:
- Serve as a liaison between cross-functional teams, advocating for data-driven decisions.
- Mentor analysts and promote a culture of analytics within the organization.
7. Product Impact Tracking:
- Design and implement analyses to monitor product impact.
- Ensure alignment of analytics initiatives with broader business objectives.
What are we looking for?
Skills and Attributes:
- 8–15 years of total professional experience, preferably in Tech, Consulting, or high-scale Analytics organizations.
- 4+ years of people management experience, leading data science, analytics, or operational analytics teams in system-heavy environments.
- Advanced proficiency in SQL and Python — able to drive deep analyses, RCA investigations, and metric instrumentation independently.
- Hands-on experience with Spark or distributed data processing frameworks for scalable analysis.
- Proven ability to design and deploy control systems or feedback loops in collaboration with engineering teams to tune complex algorithms in production.
- Successfully implemented and maintained Data Science models in production, including monitoring and post-deployment tuning.
- Solid foundation in statistical methods, hypothesis testing, and experimental design, especially as applied to system performance and anomaly detection.
- Comfort working with observability and visualization tools — Tableau, Looker, Power BI, or internal metric dashboards like Grafana or Superset.
- Strong record of cross-functional collaboration with engineering, product, SRE, and ML teams to drive system health and platform improvements.
- Demonstrated ability to work through ambiguity, structure diagnostic approaches, and drive data-informed operational decisions.
- Strong strategic and systems thinking mindset — able to reason about interdependent metrics and optimize for system-wide health.
The InMobi Culture
At InMobi, culture isn’t a buzzword; it's an ethos woven by every InMobian, reflecting our diverse backgrounds and experiences.
We thrive on challenges and seize every opportunity for growth. Our core values — thinking big, being passionate, showing accountability, and taking ownership with freedom — guide us in every decision we make.
We believe in nurturing and investing in your development through continuous learning and career progression with our InMobi Live Your Potential program.
InMobi is proud to be an Equal Employment Opportunity employer and is committed to providing reasonable accommodations to qualified individuals with disabilities throughout the hiring process and in the workplace.
Visit https://www.inmobi.com/company/careers to better understand our benefits, values, and more!
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