ScienceLogic is redefining IT operations for the modern enterprise. Our AIOps platform empowers organizations to achieve Autonomic IT — where systems are self-healing, self-optimizing, and seamlessly aligned with business outcomes. We help enterprises and service providers gain unified visibility across hybrid and multi-cloud environments, automate workflows, and unlock performance at scale. We’re accelerating digital transformation through the power of automation, AI, and analytics — giving IT and business leaders the tools to deliver superior customer experiences, drive efficiency, and innovate with confidence. We're looking for a strong Data Scientist to join our growing Data Science team. We run a suite of small, locally-hosted language models in production — not a single frontier API. That deliberate architecture defines this role: each model is more constrained than a giant hosted one, so product quality comes from how well we evaluate, route, prompt, ground, and orchestrate the models we have. Your job is to get the best possible outcomes out of that suite. This is not classical predictive modeling. The object of measurement is the LLM system itself — its answers, retrieval, multi-step agent behavior, and reliability under adversarial and edge-case conditions. You'll define what "good" means for a non-deterministic system running on bounded local models, build the evaluation infrastructure that catches regressions, and turn interaction data into the analysis that tells engineering and product where to invest. You'll also build production prediction and trend capability — forecasting, anomaly detection, and early-warning signals over operational telemetry — that feeds directly into that system. You'll work across data scientists, ML/inference engineers, frontend, and product in an enterprise environment with real security and compliance constraints. If you think in eval suites, failure modes, and groundedness — and you're energized by squeezing reliable, high-quality behavior out of small models under real resource budgets — this is the role.
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Job Type
Full-time
Career Level
Mid Level