Design and implement scalable real-time data integration and Change Data Capture (CDC) solutions using the Striim platform.
Design streaming data architectures connecting enterprise databases, cloud data platforms, messaging systems, and AI/ML environments.
Develop data pipelines that support machine learning workflows, feature engineering, model inference, and real-time AI applications.
Build proof-of-concepts, reference architectures, and deployment patterns for enterprise implementations.
Configure, optimize, and troubleshoot data pipelines across cloud and hybrid environments.
Collaborate with Engineering, Product, and GTM Engineering teams to validate architectural designs, resolve complex technical challenges, and improve platform capabilities.
Participate in architecture reviews, implementation planning, and production readiness activities.
Create technical documentation, architecture diagrams, and implementation best practices.
Evaluate emerging technologies across AI, MLOps, cloud computing, and real-time data streaming.
Requirements
2+ years of professional experience or equivalent graduate research, internships, or project experience in data science, machine learning, data engineering, cloud engineering, or solution architecture.
Strong foundation in data science, including machine learning algorithms, model selection, feature engineering, and the machine learning lifecycle.
Understanding of modern MLOps practices, including model deployment, inference, monitoring, versioning, and CI/CD for machine learning applications.
Experience or academic exposure to machine learning frameworks and platforms such as MLflow, Kubeflow, Vertex AI, SageMaker, or Azure Machine Learning.
Familiarity with modern data integration concepts, including Change Data Capture (CDC), event-driven architectures, and real-time streaming data pipelines.
Working knowledge of relational and NoSQL databases, including SQL proficiency and database administration fundamentals.
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Experience with cloud platforms and modern cloud data ecosystems, including AWS, Azure, GCP, Databricks, Snowflake, BigQuery, Amazon Redshift, or Azure Synapse.
Experience programming in Python or Java and working with REST APIs and JSON.
Understanding of Docker containers and modern DevOps concepts; familiarity with Kubernetes, Git, and CI/CD pipelines.
Strong analytical, troubleshooting, written, and verbal communication skills.
Demonstrated curiosity, adaptability, and a passion for learning emerging technologies in AI, cloud computing, and real-time data streaming.
Bachelor's or Master's degree in Computer Science, Data Science, Software Engineering, Information Systems, or a related technical discipline.
Benefits
Competitive salary and pre-IPO stock options
Comprehensive health care plans (medical, dental and vision), including medical and dependent FSA
Paid Time Off (Vacation, Sick & Public Holidays)
The chance to contribute to and shape an upbeat, fully engaged culture
Compensation
$120,000 - $130,000 USD on an annualized basis. In addition to base pay, this role offers the opportunity to earn commission-based rewards.
Applications will be reviewed on a rolling basis and accepted until the position is filled.
Our company culture fosters entrepreneurship and nurtures our team members to grow with the company. Come join a Silicon Valley startup focused on delivering a product that’s loved by its customers and primed to be a core part of the cloud data stack.
We are an equal opportunity employer, and we value diversity at our company.It is in our best interest to continue to foster an environment of diversity, equity, and inclusion to bring the most value to our workforce, customers, and partners. All applicants are considered for employment without attention to race, color, religion, sex, age, marital status, sexual orientation, gender identity, national origin, veteran status, or disability status.
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About Striim, Inc.
Technology
Striim provides a real-time data integration and streaming platform that enables enterprises to build continuous data pipelines for analytics, cloud migration, and operational intelligence.