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Staff Software Engineer
Отличная позиция для опытного инженера: работа в крупной международной AI-компании, высокий уровень автономии и сложные технические задачи. AlphaSense — признанный лидер в своей нише с сильной инженерной культурой.
Сложность вакансии
Роль Staff-уровня требует не только глубоких знаний Python и системного дизайна, но и умения влиять на команды без формального подчинения. Высокая сложность обусловлена необходимостью принимать архитектурные решения для высоконагруженных систем обработки неструктурированных данных.
Анализ зарплаты
Указанная роль Staff-инженера в Бангалоре предполагает компенсацию выше среднего по рынку Индии, учитывая статус компании AlphaSense как единорога и высокие требования к квалификации. Рыночные оценки для такого уровня варьируются от 5 до 8 миллионов рупий в год.
Сопроводительное письмо
I am writing to express my strong interest in the Staff Software Engineer position within the Unstructured Content Portfolio at AlphaSense. With extensive experience in designing and maintaining high-scale production systems and a deep proficiency in Python, I am particularly drawn to the challenge of managing complex real-time ingestion pipelines and entitlement enforcement for broker research. My background in making critical build-vs-buy decisions and leading cross-team technical initiatives aligns perfectly with the expectations for a Staff-level role at AlphaSense.
Throughout my career, I have championed the use of AI-assisted development and have successfully integrated LLMs and NLP pipelines into production environments. I am impressed by AlphaSense's mission to remove uncertainty from decision-making through AI-driven insights, and I am eager to bring my expertise in system design, Kubernetes, and distributed systems to help raise the engineering bar across your organization. I look forward to the possibility of contributing to the reliability and scalability of your market intelligence platform.
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Описание вакансии
About AlphaSense:
The world’s most sophisticated companies rely on AlphaSense to remove uncertainty from decision-making. With market intelligence and search built on proven AI, AlphaSense delivers insights that matter from content you can trust. Our universe of public and private content includes equity research, company filings, event transcripts, expert calls, news, trade journals, and clients’ own research content.
The acquisition of Tegus by AlphaSense in 2024 advances our shared mission to empower professionals to make smarter decisions through AI-driven market intelligence. Together, AlphaSense and Tegus will accelerate growth, innovation, and content expansion, with complementary product and content capabilities that enable users to unearth even more comprehensive insights from thousands of content sets. Our platform is trusted by over 6,000 enterprise customers, including a majority of the S&P 500. Founded in 2011, AlphaSense is headquartered in New York City with more than 2,000 employees across the globe and offices in the U.S., U.K., Finland, India, Singapore, Canada, and Ireland. Come join us!
About the Role
We're looking for a Staff Software Engineer who owns technical direction, thrives in ambiguity, and uses AI as a natural part of how they build software. You won't just write code - you'll make decisions that shape systems for years, mentor engineers across teams, and drive the engineering bar higher across the organization.
This role sits within the Unstructured Content Portfolio, Broker Research domain - the systems that acquire, process, and deliver equity research from major brokers, and the authorization layer that controls who can access what. You'll work on real-time ingestion pipelines, multi-vendor API integrations, entitlement enforcement across distributed systems, and content delivery at scale - where compliance, reliability, and low-latency processing matter deeply.
As a Staff Engineer, you'll operate at the intersection of technical depth and organizational influence - turning ambiguous business problems into executable technical strategies, and shipping them end-to-end.
What You'll Do
- Set technical direction for your area - make build-vs-buy decisions, define architecture, and own the technical roadmap alongside product leadership.
- Take ambiguous problems and make them concrete - scope work, identify risks, break down large initiatives into deliverable increments, and drive alignment across teams.
- Design and deliver production-grade systems - scalable pipelines, robust services, and high-performance solutions that serve real users at scale.
- Leverage AI tools as part of your workflow - you use AI-assisted development (Claude Code, Cursor, Copilot) to accelerate your work and have formed opinions on when it helps and when it gets in the way.
- Evaluate and integrate AI/ML capabilities into production systems when the problem calls for it - you don't need to be an ML researcher, but you're sharp enough to pick up LLMs, embeddings, or classification models and put them to work.
- Drive cross-team technical initiatives - influence engineers and teams you don't manage. Lead RFCs, drive architectural reviews, and build consensus on hard technical decisions.
- Own what you build - from requirements to release to production. You build it, you run it. You monitor SLOs/SLIs, troubleshoot production issues, and continuously improve reliability.
- Raise the engineering bar - through code reviews, mentorship, technical documentation, and by modeling the standards you expect from others.
Must Have
- Strong in Python (our primary backend language). Comfortable working across languages - you've shipped production code in at least two.
- Designed and owned production systems serving real users at scale - not just contributed to them, but made consequential architectural decisions and lived with the outcomes.
- Led cross-team technical initiatives without formal authority - driven migrations, platform changes, or architectural shifts that required aligning multiple teams.
- Strong system design instincts - you think in terms of failure modes, data flow, scalability, and operational cost. You design for the system you'll maintain, not just the one you'll ship.
- Deep DevOps and operational experience - Kubernetes, cloud infrastructure (AWS/Azure/GCP), CI/CD, observability. You don't throw code over the wall.
- Track record of mentoring engineers and raising team standards - through pairing, reviews, RFCs, and leading by example.
Good to Have
- Experience leading large-scale migrations or platform rewrites
- Hands-on experience with AI/ML in production - LLMs, BERT, NLP pipelines, or document understanding systems
- Contributed to or driven engineering-wide standards, practices, or tooling
- Experience with content processing, enrichment, or search systems at scale
- Familiarity with Java (parts of our stack)
- Experience with GitOps, ArgoCD, or Infrastructure as Code
- Active practitioner of AI-assisted development (AIDLC) - uses AI tools daily in their engineering workflow
Why This Role
- Real impact at scale - our entitlements engine manages complex workflows for an exponentially growing number of entitlement data for users and documents. Your architectural decisions will directly affect Top Global Companies.
- Autonomy with accountability - Staff Engineers at AlphaSense own their technical area. You'll have the freedom to make big decisions and the responsibility to make them stick.
- Hard problems, not busywork - Complex rule engine, Multi-format document processing, real-time entitlements with low latency. The problems are genuinely interesting.
AlphaSense is an equal-opportunity employer. We are committed to a work environment that supports, inspires, and respects all individuals. All employees share in the responsibility for fulfilling AlphaSense’s commitment to equal employment opportunity. AlphaSense does not discriminate against any employee or applicant on the basis of race, color, sex (including pregnancy), national origin, age, religion, marital status, sexual orientation, gender identity, gender expression, military or veteran status, disability, or any other non-merit factor. This policy applies to every aspect of employment at AlphaSense, including recruitment, hiring, training, advancement, and termination.
In addition, it is the policy of AlphaSense to provide reasonable accommodation to qualified employees who have protected disabilities to the extent required by applicable laws, regulations, and ordinances where a particular employee works.
Recruiting Scams and Fraud
We at AlphaSense have been made aware of fraudulent job postings and individuals impersonating AlphaSense recruiters. These scams may involve fake job offers, requests for sensitive personal information, or demands for payment. Please note:
- AlphaSense never asks candidates to pay for job applications, equipment, or training.
- All official communications will come from an @alpha-sense.com email address.
- If you’re unsure about a job posting or recruiter, verify it on our Careers page.
If you believe you’ve been targeted by a scam or have any doubts regarding the authenticity of any job listing purportedly from or on behalf of AlphaSense please contact us. Your security and trust matter to us.
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Навыки
- Python
- Java
- Kubernetes
- AWS
- Azure
- GCP
- CI/CD
- System Design
- NLP
- LLM
- ArgoCD
- Infrastructure as Code
- GitOps
Возможные вопросы на собеседовании
Проверка навыков системного проектирования и понимания компромиссов при работе с данными в реальном времени.
Как бы вы спроектировали систему обработки прав доступа (entitlements) для миллионов документов, обеспечив при этом низкую задержку (low latency) и высокую согласованность данных?
Оценка лидерских качеств и способности внедрять изменения на уровне всей организации.
Опишите случай, когда вам нужно было внедрить архитектурное изменение или миграцию, с которыми были согласны не все команды. Как вы добились консенсуса?
Проверка практического опыта работы с современными AI-инструментами разработки.
Как вы используете AI-инструменты (например, Cursor или Claude Code) в своем ежедневном рабочем процессе и в каких случаях, по вашему мнению, они могут навредить качеству кода?
Оценка ответственности за эксплуатацию систем (DevOps культура).
Расскажите о самом сложном инциденте в продакшене, который вы расследовали. Какие метрики (SLO/SLI) помогли вам, и какие изменения в архитектуру были внесены после?
Проверка способности выбирать правильные технологии под бизнес-задачи.
Какими критериями вы руководствуетесь при принятии решения 'build vs buy' для критически важного компонента инфраструктуры?
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