Award-Winning Organic Chemistry Tutors
serving Augusta, GA
Organic Chemistry
Tutors in Augusta
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Working in a cancer biology research lab means Yasheen encounters the organic chemistry behind drug design and molecular signaling every day — not as textbook problems, but as real questions about how functional groups determine a molecule's behavior in living systems. She connects that bench-level intuition to the arrow-pushing, stereochemistry, and carbonyl reactivity students need to master in their orgo courses. Rated 5.0 by students.

Biochemistry majors don't just pass organic chemistry — they keep using it, which means Addison is building on reaction mechanisms and functional group behavior in courses well beyond the introductory sequence at Rice. That ongoing exposure to carbonyl chemistry, stereochemistry, and arrow-pushing in biological contexts gives her a practical fluency that makes tutoring sessions feel less like reviewing old notes and more like working through the material with someone who still thinks in it daily.
I am a person who genuinely enjoys both writing and chemistry (especially organic). To most people, this seems like an odd combination but for me it's natural. I have been able to leverage both of these skills in order to obtain a PhD in organic chemistry. Also, I have written a couple of articles about chemistry on Medium. Understandably, some students struggle in these areas and I would like to help. When I am working with students, I like to be flexible with my teaching approach. During our first session, the student and I will set goals for our time together and we will discuss your learning style. In the subsequent sessions, student and I will work together to develop a learning environment that will help you Education: - Ph.D. in Organic Chemistry from the University of Notre Dame (2014) - B.S. in Biochemistry from Xavier University of Louisiana (2008) Experience: 1. 5 years working as a lecture teaching assistant for general chemistry I and organic chemistry I and II at the University of Notre Dame 2. 1 year experience tutoring a high school student in chemistry (1 hour per week) 3. 6 years experience in helping undergraduate students understand organic chemistry and biology
Pre-med biology students often have a unique relationship with organic chemistry — it's the course that connects their cellular biology knowledge to the molecular logic underneath it. Alina, currently on the pre-med track at UGA with a neuroscience emphasis, tackles reaction mechanisms by linking functional group behavior back to the biological molecules she studies daily, turning abstract arrow-pushing into something that clicks. Rated 5.0 by students.
Between organic chemistry lectures, TA sessions, and the pre-med gauntlet at Northwestern, Manideep has worked through reaction mechanisms from multiple angles — teaching arrow-pushing to struggling students while simultaneously applying it in his own advanced coursework. He zeroes in on spectroscopy interpretation and retrosynthetic thinking, two areas where students often panic because they require synthesizing everything learned all semester into a single problem. Rated 5.0 by students.
I am a 3rd year bio major at GT with minors in biochemistry and computer science. My tutoring subjects are math, bio, and chem. I have tutored for a few years, and I have also TAed! My favorite subjects are general chemistry and molecular biology (: My personal belief is that anyone can enjoy a subject once they truly understand it.
A biochemistry degree means Adel didn't just pass organic chemistry — he built on it, connecting reaction mechanisms to the enzyme kinetics and metabolic pathways that came next. That sequencing gives him a clear sense of which concepts (arrow-pushing, stereochemistry, carbonyl reactivity) students need to truly internalize versus which details they can look up later. Rated 5.0 by students.
Leah's neurobiology degree required her to understand organic chemistry from the biological side — how enzyme active sites exploit nucleophilicity, why drug molecules need specific stereochemistry, how functional groups determine whether a compound crosses a cell membrane. She brings that applied perspective to teaching topics like carbonyl reactivity and chirality, grounding each mechanism in real biochemical context. Rated 5.0 by students.
Teaching general and organic chemistry as a graduate TA at the University of Tennessee means Taylor has walked hundreds of students through the exact moments where orgo gets confusing — arrow-pushing that suddenly involves three steps, or stereochemistry problems where every answer choice looks plausible. That repetition sharpened her ability to diagnose where someone's reasoning breaks down, especially in nucleophilic addition and substitution mechanisms, and rebuild it on the spot. Rated 5.0 by students.
Karim's dual background in psychology and biology means he studied organic chemistry as a prerequisite for medical school — the same context most of his students are in right now. He zeroes in on functional group transformations and carbonyl chemistry, breaking down why electrons move where they do so that unfamiliar exam problems become solvable puzzles.
Matthew self-identifies as someone who genuinely loves organic chemistry — which, for a biochemistry graduate, meant he didn't just survive the course but kept returning to it as a tutor while others moved on. That enthusiasm shows up in how he teaches arrow-pushing and reaction mechanisms: he connects each transformation to the biochemical context where it actually matters, making patterns like nucleophilic additions and carbonyl reactivity feel logical rather than arbitrary. Rated 5.0 by students.
Reaction mechanisms are the language of organic chemistry, and Andrew teaches students to read them fluently. He unpacks arrow-pushing for substitution, elimination, and addition reactions by tying each mechanism back to nucleophilicity, sterics, and leaving-group ability — so students predict products instead of memorizing hundreds of individual reactions.
Reaction mechanisms are a language, and Matthew teaches students to read them fluently — arrow pushing, stereochemistry, and functional group transformations all follow patterns that become predictable once you see the underlying logic. His chemistry major at Williams included organic coursework as part of the pre-med track, so he knows exactly which reactions and concepts show up again in biochemistry and on the MCAT.
Reaction mechanisms are stories — each arrow push has a reason rooted in electronegativity, sterics, or orbital overlap. Daniel unpacks those reasons for every major reaction class, from nucleophilic substitutions and eliminations through carbonyl chemistry, so students can predict products on unfamiliar problems instead of relying on flashcard recall.
Beverly's chemistry degree means she didn't just pass organic chemistry — she built her entire academic foundation on understanding how molecules behave, from electron density maps to the logic behind substitution and elimination pathways. She teaches arrow-pushing as a skill you practice like a language, walking through each mechanism step by step until students can predict products on their own without flipping back to reaction tables.
Chemical and biomolecular engineering at Georgia Tech means Brittany doesn't just study organic reactions in a textbook — she applies them in the context of reaction kinetics, process design, and molecular-scale engineering problems. That engineering lens sharpens how she teaches arrow-pushing and functional group transformations, breaking each mechanism into a sequence of logical steps rather than a block of content to memorize.
Reaction mechanisms are the backbone of organic chemistry, and Stephen spent much of his biochemistry degree tracing electron movement through arrow-pushing problems. He teaches students to recognize nucleophile-electrophile patterns so they can predict products rather than relying on brute-force memorization of hundreds of reactions. That pattern-recognition approach turns a notoriously overwhelming course into something systematic.
Reaction mechanisms are a language, and Aaron teaches students to read them fluently — arrow pushing, stereochemistry, and functional group transformations all follow patterns that become predictable once you know what to look for. His chemistry degree gave him years of practice connecting structure to reactivity, from substitution and elimination basics through multi-step synthesis problems.
Biomedical engineering at Johns Hopkins means Nicholas encounters organic chemistry where it intersects with real applications — polymer biomaterials, drug delivery systems, and the functional group chemistry that governs how molecules interact with biological tissue. He teaches reaction types by grounding them in that engineering context, turning abstract arrow-pushing into something students can visualize and reason through. Rated 4.8 by students.
Reaction mechanisms click when you understand electron movement — why a nucleophile attacks one carbon over another, how steric hindrance redirects a pathway, what drives an elimination versus a substitution. Enric's PhD in Chemistry means he's spent years thinking at the mechanistic level and can unpack arrow-pushing, stereochemistry, and retrosynthetic analysis in ways that make each reaction type feel logical rather than arbitrary.
Teaching two Chemistry 101 lab sections gave Davis hands-on experience explaining reaction mechanisms, functional group behavior, and electron-pushing arrows to students encountering them for the first time. He approaches organic chemistry as a language of patterns — once students learn to read electron density and leaving-group tendencies, synthesis problems become far more manageable.
Reaction mechanisms in organic chemistry reward the same kind of systematic thinking that drives engineering design: track the electrons, identify the functional groups, and predict what happens next. Lee teaches students to read mechanisms as stories with cause and effect — nucleophile attacks electrophile, leaving group departs — instead of memorizing hundreds of individual reactions. His biomedical background adds context for why specific organic reactions matter in drug design and biochemistry.
Chemical engineering at Cornell meant Rahul didn't just pass organic chemistry — he applied it daily in reactor design, synthesis planning, and thermodynamic analysis of reaction pathways. That engineering lens gives him a distinctive angle on topics like carbonyl chemistry and stereoselectivity, where he ties mechanism logic back to energy landscapes and kinetic versus thermodynamic control. Rated 4.9 by students.
Reaction mechanisms are the backbone of organic chemistry, and students who try to memorize each one individually run out of mental storage by the second exam. Bintou's chemistry training at Penn taught her to classify reactions by electron behavior — nucleophilic attack, leaving group stability, carbocation rearrangement — so patterns emerge instead of isolated steps. She teaches students to predict products by reading the mechanism, not by recognizing a specific example they've seen before.
Jeff's molecular biology degree meant spending serious time with organic chemistry — not just passing it, but applying it to understand enzyme active sites, metabolic intermediates, and drug interactions at the molecular level. That applied perspective makes him especially effective at teaching synthesis strategy and functional group transformations, because he can ground abstract mechanisms in real biochemical context. Rated 5.0 by students.
Having taught General Chemistry, Organic Chemistry, and GOB courses for health professions repeatedly at the college level, Jeremy approaches reaction mechanisms as skills to be practiced — not facts to be memorized. His PhD in Chemistry from Yale means he can trace arrow-pushing, stereochemical analysis, and multi-step synthesis all the way down to first principles, then rebuild them at whatever level a student needs. He holds a 4.6 rating.
I am a freshman at Vanderbilt University studying biochemistry and involved in analytical chemistry research. Despite my studies being very science oriented, I also enjoy studying English and the humanities. I'd be happy to tutor you in any of these areas!
Reaction mechanisms are the backbone of organic chemistry, and learning to predict products means recognizing electron-density patterns, not memorizing hundreds of individual reactions. Alec's approach — honed through years of TA work in Cornell's chemistry department — emphasizes arrow-pushing logic and functional group reactivity so that substitution, elimination, and addition reactions start to feel like variations on a theme rather than separate things to memorize.
Reaction mechanisms are the language of organic chemistry, and Amin earned an entire master's degree becoming fluent in them. He teaches students to read electron flow the way you'd read a sentence — identifying nucleophiles, leaving groups, and stereoelectronic effects so that predicting products becomes a reasoning exercise, not a memorization marathon. Rated 4.5 by students.
Decades of running an organic chemistry research lab and teaching it at the college level mean Wyatt has explained arrow-pushing mechanisms, retrosynthetic analysis, and spectroscopy interpretation thousands of times — and learned exactly where students get stuck on each one. His PhD in the subject gives him the depth to trace a tricky multi-step synthesis back to the underlying electronic principles, then rebuild it at whatever pace clicks. Rated 4.9 by students.
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Varsity Tutors matches Augusta students with expert Organic Chemistry tutors for 1-on-1 instruction. We pair each student with a tutor based on their specific needs, learning style, and goals.
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